In-situ growth of high-crystallinity M3(hexaaminotriphenylene)2 (M = Co, Ni) thin film for field-effect transistor-based glucose biosensor
Tan P., Shen S., Luo Y. et al. · Chinese Chemical Letters · 2026
Reported here: Ni-HITP
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60 papers
Tan P., Shen S., Luo Y. et al. · Chinese Chemical Letters · 2026
Reported here: Ni-HITP
Yu H., Xu G., Liu Y. et al. · Microchemical Journal · 2025
Reported here: Ni3(HITP)2
Song M., Wu Y., Jia J. et al. · Journal of the American Chemical Society · 2025
Reported here: Ni3(HITP)2
Lister A.M., Wang Y., Armitage B.I. et al. · JPhys Materials · 2025
Reported here: Ni3(HITP)2
Damacet P., Shehayeb E.O., Mirica K.A. · Journal of the American Chemical Society · 2025
Reported here: Ni3(HITP)2 conductive metal-organic framework
Xu L., Lou W., Xu F. et al. · Materials Chemistry Frontiers · 2025
Reported here: Ni3(HITP)2 · Ni3(HITP)2@PDA
Ohkubo E., Suzuki M., Aizawa N. et al. · Journal of the American Chemical Society · 2025
Reported here: Ni3(HITP)2 · Ni3(HITP)2 slipped-AA model
Wang Y., Wang J., Zeng J. et al. · Journal of Materials Chemistry A · 2025
Reported here: Ni-HITP
Niu L., Zeng L., Yu D. et al. · ACS Nano · 2025
Reported here: Ni3(2,3,6,7,10,11-hexaiminotriphenylene)2
Mahmoudi Gahrouei M., Vlastos N., D'Souza R. et al. · Journal of Chemical Theory and Computation · 2024
Reported here: Ni3(HITP)2 two-dimensional MOF model
Cao L.-A., Wei M., Guo X. et al. · Ionics · 2024
Reported here: Ni3(HITP)2 · Ni3(HITP)2 slab model
Behboudikhiavi S., Chanteux G., Babu B. et al. · Small · 2024
Reported here: Ni3(HITP)2, nickel 2,3,6,7,10,11-hexaiminotriphenylene MOF · Pt@Ni3(HITP)2 core-shell nanowire network
Liu M., Zhao J., Dong H. et al. · Small · 2024
Reported here: Ni3(HITP)2 conductive MOF film
Zhang Y., Han Y., Deng F. et al. · Carbon Energy · 2024
Reported here: Ge@Ni3(HITP)2 anode · Ni3(HITP)2
Zhao X., Jiang S., Zhang Z. et al. · ACS Sensors · 2024
Reported here: Ni3(HITP)2
Jo Y.-M., Kim D.-H., Wang J. et al. · Journal of the American Chemical Society · 2024
Reported here: Ni3HITP2
Chen M., Wu T., Niu L. et al. · Advanced Materials · 2024
Reported here: Ni3(HITP)2 c-MOF supercapacitor model systems · Ni3(HITP)2 conductive MOF
Liu J., Yang M., Zhou X. et al. · Journal of the American Chemical Society · 2024
Reported here: Ni3(HITP)2 conductive metal-organic framework · Ni3(HITP)2 reduced/adduct DFT model systems
He Y., Li N.-H., Wen F. et al. · Chemistry - A European Journal · 2023
Reported here: Ni3(HITP)2 · Pd(II)@Ni3(HITP)2
Ohata T., Nomoto A., Watanabe T. et al. · Journal of Colloid and Interface Science · 2023
Reported here: HITP-Ni-NS · HITP-Ni_subphase · Ni3(HITP)2 bulk powder
Debela T.T., Yang M.C., Hendon C.H. · Journal of the American Chemical Society · 2023
Reported here: Hydrogen-defective Ni3(HITP)2 model systems · Ni3(HITP)2 conductive 2D metal-organic framework
Zhang J.-L., Gao S., Yang Y. et al. · Biosensors and Bioelectronics · 2023
Reported here: Ni3(HITP)2 · Ru@Ni3(HITP)2
Chen P., Su X., Wang C. et al. · Angewandte Chemie - International Edition · 2023
Reported here: Ni3(HITP)2
Shen S., Tan P., Tang Y. et al. · ACS Applied Electronic Materials · 2022
Reported here: Ni3(HITP)2 membrane · Ni3(HITP)2-DNA FET sensor control · Ni3(HITP)2-GA FET sensor control · Ni3(HITP)2-GA-DNA FET sensor
Bhauriyal P., Heine T. · Journal of Materials Chemistry A · 2022
Reported here: Ni3(2,3,6,7,10,11-hexaiminotriphenylene)2
Sun X., Li Y., Su H. et al. · Applied Catalysis B: Environmental · 2022
Reported here: Ni-HITP conductive MOF
Wang R., Yu W., Sun C. et al. · Nanoscale Research Letters · 2022
Reported here: ITO/Ni3(HITP)2/perovskite/PC61BM/Ag inverted perovskite solar cell stack · Ni3(HITP)2 metal-organic framework
Lee T., Kim J.-O., Park C. et al. · Advanced Materials · 2022
Reported here: Ni3(HITP)2 conductive metal-organic framework · Pt-atom-immobilised Ni3(HITP)2 thin film
Dell'angelo D., Momeni M.R., Pearson S. et al. · Journal of Chemical Physics · 2022
Reported here: Ni3(HITP)2 layered MOF model
Li Y., Wang R., Wang G.-E. et al. · ACS Nano · 2022
Reported here: Ni3(HiTP)2 computational model · Ni3(HiTP)2 conductive metal-organic framework · Ni3(HiTP)2-on-microstructured mixed cellulose composite film · Ni3(HiTP)2-on-polypropylene composite film
Ross R.D., Sheng H., Ding Y. et al. · Journal of the American Chemical Society · 2022
Reported here: Ni-HITP / Ni3HITP2
Pan L., Li R., Zhang C. et al. · ACS Applied Electronic Materials · 2022
Reported here: Ni3(HITP)2
Cai Y., Wang W., Cao X. et al. · Advanced Functional Materials · 2022
Reported here: Ni-HITP metal-organic framework
Mariano R.G., Wahab O.J., Rabinowitz J.A. et al. · ACS Central Science · 2022
Reported here: Ni3(HITP)2
Yang X., Yi J., Wang T. et al. · Advanced Materials · 2022
Reported here: Ni3HITP2 conductive MOF
Yoon S., Talin A.A., Stavila V. et al. · ACS Applied Materials and Interfaces · 2021
Reported here: Ni-HITP
Liu M., Li Y., Qi Z. et al. · Journal of Physical Chemistry Letters · 2021
Reported here: Br-Ni MOF · Cl-Ni MOF · F-Ni MOF · I-Ni MOF · Pristine Ni MOF
Zhou S., Qiu Z., Stromme M. et al. · Energy and Environmental Science · 2021
Reported here: Cladophora cellulose nanofibre @ Ni-HITP conductive MOF film (CCM) · Direct-blended cellulose/Ni-HITP nanopaper · Ni-HITP conductive metal-organic framework · Wood nanocellulose @ Ni-HITP film
Zhang Y., Qiu T., Jiang F. et al. · Applied Surface Science · 2021
Reported here: Ni3(HITP)2 electrode composite · spindle-like Ni3(HITP)2 MOFs
Wang J., Li F., Liu Z. et al. · ACS Applied Materials and Interfaces · 2021
Reported here: Ni3(HITP)2
Ohata T., Nomoto A., Watanabe T. et al. · ACS Applied Materials and Interfaces · 2021
Reported here: HITP-Ni-NS · Ni3(HITP)2 bulk powder
Borysiewicz M.A., Dou J.-H., Stassen I. et al. · Faraday Discussions · 2021
Reported here: Ni3(HITP)2
Li Z., Li J.-G., Ao X. et al. · Electrochimica Acta · 2020
Reported here: La0.6Sr0.4Co0.8Fe0.2O3@Ni3(HITP)2 · Ni3(HITP)2
Huang H., Zhao Y., Bai Y. et al. · Advanced Science · 2020
Reported here: Ni3(HITP)2 conductive MOF
Chen T., Dou J.-H., Yang L. et al. · Journal of the American Chemical Society · 2020
Reported here: Ni3(HITP)2
Park J., Chen Z., Flores R.A. et al. · ACS Applied Materials and Interfaces · 2020
Reported here: Ni-HITP comparison model
Zhou S., Kong X., Zheng B. et al. · ACS Nano · 2019
Reported here: CNF-Ni-HITP direct-mixed paper · CNF@Ni-HITP hybrid nanofibers / nanopaper · Ni-HITP conductive metal-organic framework
Chen H., Xiao Y., Chen C. et al. · ACS Applied Materials and Interfaces · 2019
Reported here: Ni3(HITP)2 · Ni3(HITP)2-modified polypropylene separator
Wang B., Luo Y., Liu B. et al. · ACS Applied Materials and Interfaces · 2019
Reported here: Ni-MOF / Ni3(HITP)2
Le K.N., Hendon C.H. · Physical Chemistry Chemical Physics · 2019
Reported here: Ni3(hexaiminotriphenylene)2 / Ni3(HITP)2
Day R.W., Bediako D.K., Rezaee M. et al. · ACS Central Science · 2019
Reported here: Ni3(HITP)2
Miner E.M., Wang L., Dinca M. · Chemical Science · 2018
Reported here: Ni3(HITP)2 hexagonal MOF
Zhu W., Zhang C., Li Q. et al. · Applied Catalysis B: Environmental · 2018
Reported here: Ni3(HITP)2 conductive two-dimensional metal-organic framework · Ni3(HITP)2/[Ru(bpy)3]2+ hybrid photocatalytic CO2-reduction system
Sun L., Liao B., Sheberla D. et al. · Joule · 2017
Reported here: Ni3(HITP)2
Miner E.M., Gul S., Ricke N.D. et al. · ACS Catalysis · 2017
Reported here: Ni3(HITP)2
Wu G., Huang J., Zang Y. et al. · Journal of the American Chemical Society · 2017
Reported here: Ni3(HITP)2
He Y., Spataru C.D., Leonard F. et al. · Physical Chemistry Chemical Physics · 2017
Reported here: Ni3(HITP)2 two-dimensional metal-organic framework model
Miner E.M., Fukushima T., Sheberla D. et al. · Nature Communications · 2016
Reported here: Ni3(hexaiminotriphenylene)2
Campbell M.G., Liu S.F., Swager T.M. et al. · Journal of the American Chemical Society · 2015
Reported here: Ni3(HITP)2 (MOF 3)
Campbell M.G., Sheberla D., Liu S.F. et al. · Angewandte Chemie - International Edition · 2015
Reported here: Ni3(HITP)2
No linked paper matches these filters.
Raw names, formulas and structural assignments remain separate; no consensus value is inferred.
| Paper and reported name | Formula and components | Structure context | Source |
|---|---|---|---|
| Ni-HITP2026 · In-situ growth of high-crystallinity M3(hexaaminotriphenylene)2 (M = Co, Ni) thin film for field-effect transistor-based glucose biosensor | Ni3(HITP)2Ni2+ centres · HITP | 2D · PristineMonometallic Ni-HITP conductive MOF control with characteristic XRD peaks at 4.8, 9.2 and 27.1 deg. | 2 · Results · Fig. 1d |
| Ni-HITP2025 · Micro-sized conductive metal–organic framework nanosheets for the electrochemical hydrogen evolution reaction in acidic media | Ni-HITP (nickel 2,3,6,7,10,11-hexaaminotriphenylene framework)Ni · 2,3,6,7,10,11-hexaaminotriphenylene (HITP) | 2D · PristineConductive HITP-based MOF; crystalline Cu/Co/Ni-HITP show XRD peaks assigned to (100), (200), (210), (220) in the ab plane and a c-axis peak at 27.8 degrees. | p002 / 42274 · Results and discussion · Fig. S1 |
| Ni3(2,3,6,7,10,11-hexaiminotriphenylene)22025 · Overscreening-Driven Modulation of Ion Adsorption and Desorption in Conductive MOF Electrodes by Charging Rates | Ni3(HITP)2Ni · 2,3,6,7,10,11-hexaiminotriphenylene (HITP) | 2D · PristineConductive metal-organic framework electrode with monodispersed nanopores; atomistic electrode structure used for MD was obtained from experimental measurements reported in prior work. | 2582 · Introduction |
| Ni3(HITP)22025 · A conductive MOF with bimetallic spontaneously recycled systems as a signal enhancer for the ultrasensitive detection of T-2 toxin using an electrochemical aptasensor | Ni3(HITP)2Ni ions · HITP = 2,3,6,7,10,11-hexaiminotriphenylene | 2D · PristineConductive triphenylene-based MOF used as the pristine Ni-only control in the NixCo3-x(HITP)2 series. | 2 · Introduction |
| Ni3(HITP)22025 · Catalysis-Assisted Synthesis of Two-Dimensional Conductive Metal–Organic Framework Films with Controllable Orientation | Ni3(HITP)2Ni ions from Ni(OAc)2 · HITP derived from HATP.6HCl | 2D · PristineDiamine-based conductive 2D MOF; face-on orientation verified by out-of-plane (002) peak; edge-on analogue in SI. | 17061 · Results and Discussion · Figure 4 |
| Ni3(HITP)22025 · Highly Porous, Electrically Conductive Two-Dimensional Nickel–Hexaaminodehydrobenzoannulene Frameworks | Ni3(HITP)2Ni2+ coordinated by o-phenylenediamine/hexaiminotriphenylene nodes · HATP/HITP ligand | 2D · PristineTriphenylene-based 2D conductive MOF; eclipsed/slipped-AA stacked hexagonal framework, P6/mmm AA refinement. | 31942 · Preparation and Structure of MOFs · Scheme 1b |
| Ni3(HITP)22025 · Conductive metal-organic framework synthesis from metal nanoparticle precursors | Ni3(HITP)2Ni nodes; Ni 2p3/2 binding energies above 855.5 eV indicate oxidised Ni and no metallic Ni within the top 5 nm/6 nm sampling depth reported. · 2,3,6,7,10,11-hexaiminotriphenylene (HITP), formed from HATP.6HCl precursor | 2D · Pristine2D hexagonal sheets with slipped parallel stacking; TEM interlayer spacing measured as 3.3 A. | p003 · Introduction · Figure 1 |
| Ni3(HITP)22025 · Enhancing pancreatic cancer ablation efficiency: bipolar IRE with conductive MOF | Ni3(HITP)2Ni · HITP | 2D · PristineSheet-like conductive MOF; crystallinity retained after PDA coating according to XRD comparison. | 2019 · 2.1 Materials and chemicals |
| Ni3(HITP)2 conductive metal-organic framework2025 · Controlling the Spatiotemporal Self-Organization of Stimuli-Responsive Nanocrystals under Out-of-Equilibrium Conditions | Ni3(HITP)2Ni-bisdiimine / Ni2+ coordination nodes · HITP = 2,3,6,7,10,11-hexaiminotriphenylene, generated from HATP.6HCl | 2D · PristineLayered 2D conductive MOF; simulated ABAB/slipped-parallel stacking; PXRD compared with simulated/bulk Ni3(HITP)2 patterns. | 1585 · Experimental Design · Figure 1a |
| Ni3(HITP)2 slipped-AA model2025 · Highly Porous, Electrically Conductive Two-Dimensional Nickel–Hexaaminodehydrobenzoannulene Frameworks | Ni3(HITP)2Ni in DFT+U model · HITP ligand | 2D · Model SystemLowest-energy slipped-AA model with 0.175 nm interlayer shift used for band calculations. | S5 · S1-2 Computation |
| Ni3(HITP)2@PDA2025 · Enhancing pancreatic cancer ablation efficiency: bipolar IRE with conductive MOF | Ni3(HITP)2@PDANi · HITP plus polydopamine coating | 2D · CompositePDA-coated Ni3(HITP)2 nanoparticles; SEM/TEM showed conformal PDA coating and XRD retained crystallinity. | 2022-2023 · 3.3 Characterization of conductive MOF · Fig. 2 |
| Ge@Ni3(HITP)2 anode2024 · Enhancement of the performance of Ge–air batteries under high temperatures using conductive MOF-modified Ge anodes | Ge@Ni3(HITP)2Ni centres in Ni3(HITP)2 film on Ge wafer · HITP framework film on Ge | 2D · CompositeComposite anode made by depositing a Ni3(HITP)2 film on a heavily doped p-type Ge(100) wafer. | p003 · 2.2 · Figure 1A |
| Ni3(HITP)22024 · Conductive Ni3(HITP)2 nanofilm with asymmetrical morphology prepared by gas–liquid interface self-assembly for glucose sensing | Ni3(HITP)2Ni · HITP (2,3,6,7,10,11-hexaiminotriphenylene) | 2D · Pristine2D graphene-like honeycomb/kagome conductive MOF; XRD peaks assigned to (100), (200), and (002) planes. | p001 / 2375 · Abstract and Introduction |
| Ni3(HITP)22024 · Enhancement of the performance of Ge–air batteries under high temperatures using conductive MOF-modified Ge anodes | Ni3(HITP)2Ni coordination centres; Ni-N first shell · HITP = 2,3,6,7,10,11-hexaiminotriphenylene; precursor HATP.6HCl | 2D · Pristine2D honeycomb hexagonal conductive MOF with ordered one-dimensional channel structure and layered stacking. | p003 · Introduction |
| Ni3(HITP)22024 · High-Performance H2S Sensors to Detect SF6 Leakage | Ni3(HITP)2Ni nodes · HITP | 2D · Pristine2D layered conductive HITP framework with M-N coordination; used as a monometallic comparison material. | 3 · 2.1. Sample Preparation and Characterization · Figures 2, S8 |
| Ni3(HITP)2 c-MOF supercapacitor model systems2024 · Organic Solvent Boosts Charge Storage and Charging Dynamics of Conductive MOF Supercapacitors | Ni3(HITP)2 electrodes with [Bmim][PF6] or [Bmim][PF6]/ACN electrolyteNi in modelled Ni3(HITP)2 electrodes · HITP-derived framework in modelled Ni3(HITP)2 electrodes | 2D · Model SystemTwo identical symmetric conductive MOF electrodes, each a stack of 18 conductive MOF layers, separated by electrolyte in constant-potential MD. | 9 · Experimental Section - Molecular Dynamics Simulations |
| Ni3(HITP)2 conductive metal-organic framework2024 · Solid-State Electrochemical Carbon Dioxide Capture by Conductive Metal-Organic Framework Incorporating Nickel Bis(diimine) Units | Ni3(2,3,6,7,10,11-hexaiminotriphenylene)2; Ni3(HITP)2Ni(II) centres linked into nickel bis(diimine) / Ni-BDI units. · 2,3,6,7,10,11-hexaiminotriphenylene / HITP from HATP precursor. | 2D · PristineLayered infinite honeycomb porous network with eclipsed packing model; PXRD consistent with simulated pattern. | 33094 · Introduction · Figure 1 |
| Ni3(HITP)2 conductive MOF2024 · Organic Solvent Boosts Charge Storage and Charging Dynamics of Conductive MOF Supercapacitors | Ni3(2,3,6,7,10,11-hexaiminotriphenylene)2Ni nodes in a conductive metal-organic framework · 2,3,6,7,10,11-hexaiminotriphenylene / HATP-derived hexaaminotriphenylene linker | 2D · PristineCrystalline conductive MOF with hexagonal pores; PXRD matches simulated and reported Ni3(HITP)2 structure. | 1 · Introduction |
| Ni3(HITP)2 conductive MOF film2024 · Electrodeposition of Ni/Cu Bimetallic Conductive Metal–Organic Frameworks Electrocatalysts with Boosted Oxygen Reduction Activity for Zinc–Air Batteries | Ni3(HITP)2Ni coordinated to N sites in square-planar Ni-N4 motifs · 2,3,6,7,10,11-hexaiminotriphenylene (HITP) | 2D · PristineLayered 2D planar conductive framework with vertical pi-pi stacking; XRD peaks assigned to stacked cellular construction. | 2 · 2.1 Material Design and Structural Characterization · Figure 1a,b |
| Ni3(HITP)2 reduced/adduct DFT model systems2024 · Solid-State Electrochemical Carbon Dioxide Capture by Conductive Metal-Organic Framework Incorporating Nickel Bis(diimine) Units | Ni3(HITP)2, [Ni3(HITP)2]3-, [Ni3(HITP)2-3CO2]3-Model Ni-BDI units in the Ni3(HITP)2 framework. · HITP framework linker in periodic/modelled structure. | 2D · Model SystemDFT model used for charges, electrostatic potential and CO2 adduct energetics. | S34 · 12.4 Computation Details · Figures S43-S47 |
| Ni3(HITP)2 slab model2024 · Conductive Ni3(HITP)2 nanofilm with asymmetrical morphology prepared by gas–liquid interface self-assembly for glucose sensing | Ni3(HITP)2Ni · HITP | 2D · Model SystemPeriodic slab model with saturated Ni, unsaturated defective Ni, and carbon adsorption sites. | p003 / 2377 · Computational methods |
| Ni3(HITP)2 two-dimensional MOF model2024 · Benchmark Investigation of SCC-DFTB against Standard and Hybrid DFT to Model Electronic Properties in Two-Dimensional MOFs for Thermoelectric Applications | Ni3(HITP)2Ni nodes coordinated by imino nitrogen donors. · HITP = 2,3,6,7,10,11-hexaiminotriphenylene. | 2D · Model SystemModelled as flat and wavy monolayers plus flat and wavy AA-stacked geometries. | main p.2, article p.3977 · Introduction |
| Ni3(HITP)2, nickel 2,3,6,7,10,11-hexaiminotriphenylene MOF2024 · Direct Electrodeposition of Electrically Conducting Ni3(HITP)2 MOF Nanostructures for Micro-Supercapacitor Integration | Ni3(2,3,6,7,10,11-hexaiminotriphenylene)2; abbreviated Ni3(HITP)2Ni2+ centres coordinated by oxidised HATP/HITP units; text describes diiminobenzosemiquinoate submoieties. · 2,3,6,7,10,11-hexaiminotriphenylene (HATP/HITP; HATP.6HCl precursor). | 2D · PristineElectrodeposited films assigned by PXRD to simulated and bulk chemically synthesised Ni3(HITP)2 phase; no extra diffraction peaks identified for optimised potentiostatic/pulsed deposits. | 1 · Abstract |
| Ni3HITP22024 · Humidity-Mediated Dual Ionic-Electronic Conductivity Enables High Sensitivity in MOF Chemiresistors | Ni3(HITP)2Ni nodes in a triphenylene-based 2D conductive MOF · HITP | 2D · PristineTriphenylene-based cMOF control; PXRD and SEM shown in SI. | p002 / article p.20214 · Results and Discussion · Figures S4 and S5 |
| Pt@Ni3(HITP)2 core-shell nanowire network2024 · Direct Electrodeposition of Electrically Conducting Ni3(HITP)2 MOF Nanostructures for Micro-Supercapacitor Integration | Pt core nanowires with Ni3(HITP)2 shellNi2+ centres in Ni3(HITP)2 shell; metallic Pt core scaffold. · HITP/HATP-derived linker in Ni3(HITP)2 shell. | unknown · CompositeCore-shell morphology confirmed by SEM/TEM; Ni3(HITP)2 shell assigned by the same electrodeposited MOF characterisation. | 6 · Results and Discussion · Figure 5A |
| HITP-Ni-NS2023 · Air/liquid interfacial formation process of conductive metal–organic framework nanosheets | Ni3(HITP)2Ni2+ · 2,3,6,7,10,11-hexaiminotriphenylene (HITP), generated from HATP | 2D · PristineLayered, metrically hexagonal 2D conductive MOF nanosheet with pi-pi stacked sheets; a = b about 21.36 Angstrom and interlayer distance about 3.22 Angstrom. | 3 (journal p. 771) · Figure 1 caption · Fig. 1 |
| HITP-Ni_subphase2023 · Air/liquid interfacial formation process of conductive metal–organic framework nanosheets | Ni3(HITP)2Ni2+ · HITP, generated from dissolved HATP | 2D · PristineNi3(HITP)2 crystals formed in the aqueous subphase and floating to the air/liquid interface; optical and IR spectra indicate the same HITP-Ni coordination as HITP-Ni-NS. | 11 (journal p. 779) · 3.2 Discussion on formation process · Fig. 9 |
| Hydrogen-defective Ni3(HITP)2 model systems2023 · Ligand-Mediated Hydrogenic Defects in Two-Dimensional Electrically Conductive Metal-Organic Frameworks | Ni3(HITP)2Hx, x = vacancy/interstitial modelNickel nodes retained from the Ni3(HITP)2 kagome framework. · HITP linkers with hydrogen vacancy, H+, H-, H* or 2H* interstitial configurations. | 2D · Model SystemHydrogenic defect models in monolayer and vdW-stacked bulk Ni3(HITP)2; 2H* interstitial model forms Ni3(HITP)2H2. | main p.3 / article p.11389 · Results and Discussion · Figure 5 |
| Ni3(HITP)22023 · Two-Dimensional Conjugated Metal-Organic Frameworks with Large Pore Apertures and High Surface Areas for NO2 Selective Chemiresistive Sensing | Ni3(HITP)2Ni coordination sites · HITP ligand, as represented in Figure S32 | 2D · PristinePreviously known 2D c-MOF control with smaller pore aperture than HIOTP-Ni; PXRD shown against simulated pattern. | p004 · Sensing comparison · Figure S32 |
| Ni3(HITP)22023 · Ruthenium(II) complex-grafted conductive metal-organic frameworks with conductivity- and confinement-enhanced electrochemiluminescence for ultrasensitive biosensing application | Ni3(HITP)2Ni centres in a HITP-based conductive framework · HITP from 2,3,6,7,10,11-hexaiminotriphenylene / HATP.6HCl precursor | 2D · PristineConductive MOF with simulated Ni3(HITP)2 PXRD match; reported positively charged framework with large channels. | p002 · Introduction; 2.1; 3.1 · Fig. 1A |
| Ni3(HITP)22023 · A Novel Electrocatalyst Pd(II)@Ni3(HITP)2 for Ultrasensitive Detection of Chloramphenicol: Experimental and Computational Investigation | Ni3(HITP)2Ni · HITP from 2,3,6,7,10,11-hexaaminotriphenylene (HATP) | 2D · PristineHighly conductive MOF with XRD peaks assigned to (100), (200), and (001) planes. | 2 · Results and Discussion · Figure 1 |
| Ni3(HITP)2 bulk powder2023 · Air/liquid interfacial formation process of conductive metal–organic framework nanosheets | Ni3(HITP)2Ni · HITP | 2D · PristineBulk polycrystalline reference material for IR comparison. | S6 · Synthesis of Ni3(HITP)2 bulk powder |
| Ni3(HITP)2 conductive 2D metal-organic framework2023 · Ligand-Mediated Hydrogenic Defects in Two-Dimensional Electrically Conductive Metal-Organic Frameworks | Ni3(HITP)2Nickel nodes in a charge-neutral 2D kagome lattice. · HITP = 2,3,6,7,10,11-hexaiminotriphenylene, modelled as deprotonated/oxidised HITP3- linkers. | 2D · Model SystemCharge-neutral kagome lattice; predicted bulk through-space pi-stacking metal and in-plane semiconductor before hydrogenic defects. | main p.2 / article p.11388 · Introduction · Figure 1 |
| Pd(II)@Ni3(HITP)22023 · A Novel Electrocatalyst Pd(II)@Ni3(HITP)2 for Ultrasensitive Detection of Chloramphenicol: Experimental and Computational Investigation | PdCl2@Ni3(HITP)2 (reported as Pd(II)@Ni3(HITP)2)Ni framework nodes with adsorbed Pd(II)/PdCl2 · HITP framework; PdCl2 guest/electrocatalyst | 2D · CompositePdCl2 nanocrystals/adsorbates on Ni3(HITP)2; MOF structure largely retained after loading. | 2 · Results and Discussion · Scheme 1 |
| Ru@Ni3(HITP)22023 · Ruthenium(II) complex-grafted conductive metal-organic frameworks with conductivity- and confinement-enhanced electrochemiluminescence for ultrasensitive biosensing application | Ru(bpydc)3 grafted in Ni3(HITP)2Ni framework nodes plus grafted Ru(II) bpydc complex · HITP framework; Ru(bpydc)3 guest from tris(4,4'-dicarboxylicacid-2,2'-bipyridyl) ruthenium(II) dichloride | 2D · CompositeRu complex grafted into Ni3(HITP)2 channels by electrostatic attraction and coordination; PXRD shows framework retained. | p001-p002 · Abstract; Introduction · Scheme 1A |
| ITO/Ni3(HITP)2/perovskite/PC61BM/Ag inverted perovskite solar cell stack2022 · High-Hole-Mobility Metal–Organic Framework as Dopant-Free Hole Transport Layer for Perovskite Solar Cells | ITO/Ni3(HITP)2/CH3NH3PbI3/PC61BM/AgNi nodes in the Ni3(HITP)2 HTL component. · HITP linker in Ni3(HITP)2; PC61BM electron-transport layer in the device. | unknown · CompositeApplication device stack containing a pristine Ni3(HITP)2 film as the hole transport layer. | main p.6 · Results and Discussion · Figure 5a |
| Ni-HITP / Ni3HITP22022 · Operando Elucidation of Electrocatalytic and Redox Mechanisms on a 2D Metal Organic Framework Catalyst for Efficient Electrosynthesis of Hydrogen Peroxide in Neutral Media | Ni3HITP2 (HITP = hexaiminotriphenylene)Ni-N4 nodes · 2,3,6,7,10,11-hexaaminotriphenylene-derived HITP/HATP linker | 2D · PristineConductive 2D MOF with a similar Ni-N4 motif to Ni-HAB, used as comparison catalyst. | 15847 · Results · Figure S8 |
| Ni-HITP conductive MOF2022 · Dissecting π-conjugated covalent-coupling over conductive MOFs toward efficient two-electron oxygen reduction | Not specifiedNi sites; expected Ni1-N4 moieties · 2,3,6,7,10,11-hexaiminotriphenylene (HITP) | 2D · PristineLayered honeycomb-like hexagonal conductive MOF with pi-conjugated metal-ligand centres; XRD peaks assigned to [100], [200], [210], and [001] planes. | 2 · 3.1 Morphology and structure characterization · Fig. 1a; Fig. S1 |
| Ni-HITP metal-organic framework2022 · Synthesis of Tostadas-Shaped Metal-Organic Frameworks for Remitting Capacity Fading of Li-Ion Batteries | Ni3(2,3,6,7,10,11-hexaiminotriphenylene)2; Ni3(HITP)2Ni centers coordinated by N atoms · 2,3,6,7,10,11-hexaiminotriphenylene (HITP) | 2D · PristineLayered conductive Ni-HITP framework with (100), (200), and (001) reflections; nanosheet, particle, and mechanically assembled morphologies reported. | p001 · Introduction |
| Ni3(2,3,6,7,10,11-hexaiminotriphenylene)22022 · Catalysing the performance of Li-sulfur batteries with two-dimensional conductive metal organic frameworks | Ni3(HITP)2Ni · 2,3,6,7,10,11-hexaiminotriphenylene (HITP), nitrogen-based linker | 2D · Model SystemTriphenylene-based 2D honeycomb MOF monolayer; non-magnetic ground state. | PDF p2-p3 / article p12401-p12402 · Introduction; 3.1 Structural and electronic properties · Figure 1; Table 1 |
| Ni3(HITP)22022 · Redox-Active Ni(II) Nodes Induced Electrochromism in a Two-Dimensional Conductive Metal-Organic Framework | Ni3(2,3,6,7,10,11-hexaiminotriphenylene)2Ni ions/Ni nodes; redox-active Ni(II)/Ni(I) centres during electrochromism · Hexadentate HITP ligands derived from HATP.6HCl | 2D · PristineTwo-dimensional graphene-like layered honeycomb framework with pi-stacked layers and one-dimensional cylindrical channels of about 2 nm. | p002 · Results and Discussion · Figure 1a |
| Ni3(HITP)22022 · Thousand-fold increase in O2electroreduction rates with conductive MOFs | Ni3(HITP)2; HITP = 2,3,6,7,10,11-hexaiminotriphenyleneNickel nodes in a triphenylene-based conductive MOF framework. · HITP derived from HATP/HATP hydrochloride precursor. | 2D · PristineMonophasic, highly crystalline 2D conductive MOF, isostructural M3(HITP)2 family. | main article p.976 · Results and Discussion · Figure 1A |
| Ni3(HiTP)2 computational model2022 · Mutually Noninterfering Flexible Pressure-Temperature Dual-Modal Sensors Based on Conductive Metal-Organic Framework for Electronic Skin | Ni3(HiTP)2Ni · HiTP-derived linker | 2D · Model SystemFirst-principles model for band structures under 0 and 300 kPa. | 480 · Analysis of the Mutual Noninterference Mechanism · Figure 4g-i |
| Ni3(HITP)2 conductive metal-organic framework2022 · Large-Area Synthesis of Ultrathin, Flexible, and Transparent Conductive Metal–Organic Framework Thin Films via a Microfluidic-Based Solution Shearing Process | Ni3(hexaiminotriphenylene)2; Ni3(HITP)2Ni2+ nodes coordinated to imino/semiquinone HITP-derived ligands. · HITP derived from 2,3,6,7,10,11-hexaaminotriphenylene hexahydrochloride (HATP.6HCl). | 2D · PristineLayered 2D conductive MOF with in-plane (100), (200), (210), (220) PXRD peaks and an oriented (001) stacking feature in GIXD. | 1 · Abstract |
| Ni3(HiTP)2 conductive metal-organic framework2022 · Mutually Noninterfering Flexible Pressure-Temperature Dual-Modal Sensors Based on Conductive Metal-Organic Framework for Electronic Skin | Ni3(HiTP)2Ni(II) · HiTP / 2,3,6,7,10,11-hexaaminotriphenylene-derived ligand | 2D · PristineConductive MOF film assigned by XRD and literature-prepared Ni3(HiTP)2; band-structure model shown for Ni3(HiTP)2. | 476 · Results and Discussion · Figure 1; Figure S1 |
| Ni3(HITP)2 layered MOF model2022 · Modeling energy transfer and absorption spectra in layered metal-organic frameworks based on a Frenkel-Holstein Hamiltonian | Ni3(HITP)2; HITP = 2,3,6,7,10,11-hexaiminotriphenyleneNi square-planar nodes in secondary building units · HITP (2,3,6,7,10,11-hexaiminotriphenylene) | 2D · Model SystemArchetypal layered pi-stacked conductive MOF used as the basis for SBU monomer, dimer, and 1D stack computational models. | article page 2 (rendered p003) · I. Introduction · Fig. 1 |
| Ni3(HITP)2 membrane2022 · Adjustable Synthesis of Ni-Based Metal-Organic Framework Membranes and Their Field-Effect Transistor Sensors for Mercury Detection | Ni3(HITP)2; Ni3(2,3,6,7,10,11-hexaiminotriphenylene)2Ni coordinated to imino/amino N sites · HITP generated from HATP.6HCl (2,3,6,7,10,11-hexaaminotriphenylene hexahydrochloride) under alkaline conditions | 2D · PristineConductive layered two-dimensional stacked honeycomb Ni-HITP framework; PXRD reflections assigned to (100), (200) and (001) planes. | 623 · 2.3. In Situ Synthesis of Ni3(HITP)2 Membranes |
| Ni3(HITP)2 metal-organic framework2022 · High-Hole-Mobility Metal–Organic Framework as Dopant-Free Hole Transport Layer for Perovskite Solar Cells | Ni3(2,3,6,7,10,11-hexaiminotriphenylene)2Nickel nodes in a Ni-HITP conductive framework. · 2,3,6,7,10,11-hexaiminotriphenylene, generated from the hexaaminotriphenylene hexahydrochloride precursor under basic conditions. | 2D · PristineLayered conductive MOF; XRD peaks at 4.7, 9.5, 12.6 and 16.5 degrees are assigned to (100)-family reflections and 27.3 degrees to the (001) reflection. | main p.2 · Results and Discussion · Figure 1a |
| Ni3(HITP)2-DNA FET sensor control2022 · Adjustable Synthesis of Ni-Based Metal-Organic Framework Membranes and Their Field-Effect Transistor Sensors for Mercury Detection | Ni3(HITP)2 membrane physically/chemically associated with DNA probe without GA cross-linkerNi centres in Ni3(HITP)2 · HITP framework plus DNA probe | 2D · CompositeDNA-modified Ni3(HITP)2 membrane control used to test the GA cross-linker contribution. | 627 · 3.2. Hg2+ Sensing Performance · Figure S9 |
| Ni3(HITP)2-GA FET sensor control2022 · Adjustable Synthesis of Ni-Based Metal-Organic Framework Membranes and Their Field-Effect Transistor Sensors for Mercury Detection | Ni3(HITP)2 membrane modified with glutaraldehydeNi centres in Ni3(HITP)2 · HITP framework plus glutaraldehyde | 2D · CompositeGA-functionalised Ni3(HITP)2 membrane control used to test whether DNA is required for Hg2+ response. | 627 · 3.2. Hg2+ Sensing Performance · Figure S9 |
| Ni3(HITP)2-GA-DNA FET sensor2022 · Adjustable Synthesis of Ni-Based Metal-Organic Framework Membranes and Their Field-Effect Transistor Sensors for Mercury Detection | Ni3(HITP)2 membrane modified with glutaraldehyde and amino-terminated DNA probeNi centres in Ni3(HITP)2 · HITP framework plus GA cross-linker and 5'-NH2-TTG-TTG-TTT-CCT-TTC-GTT-TT-3' DNA probe | 2D · CompositeFunctionalised conductive MOF membrane; XRD/FT-IR after GA/DNA modification remains similar to pristine S4 and SEM morphology remains nanosheet-like. | 627 · 3.2. Hg2+ Sensing Performance · Figures S7 and S8 |
| Ni3(HiTP)2-on-microstructured mixed cellulose composite film2022 · Mutually Noninterfering Flexible Pressure-Temperature Dual-Modal Sensors Based on Conductive Metal-Organic Framework for Electronic Skin | Ni3(HiTP)2/MSMCNi(II) · HiTP-derived linker | 2D · CompositeNi3(HiTP)2 conformal film wrapped around MSMC fibres; liquid-solid interfacial growth. | 476 · Fabrication, Sensing Mechanisms and Characterizations · Figure 1 |
| Ni3(HiTP)2-on-polypropylene composite film2022 · Mutually Noninterfering Flexible Pressure-Temperature Dual-Modal Sensors Based on Conductive Metal-Organic Framework for Electronic Skin | Ni3(HiTP)2/PPNi(II) · HiTP-derived linker | 2D · CompositeControl substrate composite fabricated using PP membrane instead of MSMC membrane. | 477 · Pressure-Sensing Properties · Figure S5; Figure S6 |
| Ni3HITP2 conductive MOF2022 · Wet-Adhesive On-Skin Sensors Based on Metal–Organic Frameworks for Wireless Monitoring of Metabolites in Sweat | Ni3HITP2Nickel nodes / Ni sites in a HITP-based conductive MOF. · HITP = 2,3,6,7,10,11-hexaiminotriphenylene or hexaiminotriphenylenesemiquinonate as written in SI. | 2D · PristineStructurally analogous Ni-cMOF comparator; PXRD compared with Cu3HHTP2 and Ni3HHTP2. | 3 · Results and Discussions · Figure S8 |
| Pt-atom-immobilised Ni3(HITP)2 thin film2022 · Large-Area Synthesis of Ultrathin, Flexible, and Transparent Conductive Metal–Organic Framework Thin Films via a Microfluidic-Based Solution Shearing Process | Ni3(HITP)2@Pt / Ni3(HITP)2 with atomically dispersed Pt atomsNi nodes with Pt atoms introduced from PtCl2 in the metal-source solution. · HITP derived from HATP.6HCl. | 2D · CompositeHAADF-STEM image shows atomically dispersed Pt atoms in Ni3(HITP)2. | 5 · 2.2 Characterizations of Ni3(HITP)2 Thin Film · Figure S21 |
| Br-Ni MOF2021 · Self-Nanocavity-Confined Halogen Anions Boosting the High Selectivity of the Two-Electron Oxygen Reduction Pathway over Ni-Based MOFs | Br-confined Ni-HITP-type MOFPlanar Ni nodes interacting with confined bromide anions. · HITP. | 2D · PristineHalogen-anion-confined conductive Ni MOF showing lattice contraction and contracted nanocavity relative to pristine Ni MOF. | main p.4, article p.8709 · Results and discussion · Figure 3d |
| Cl-Ni MOF2021 · Self-Nanocavity-Confined Halogen Anions Boosting the High Selectivity of the Two-Electron Oxygen Reduction Pathway over Ni-Based MOFs | Cl-confined Ni-HITP-type MOFPlanar Ni nodes interacting with confined chloride anions. · HITP. | 2D · PristineHalogen-anion-confined conductive Ni MOF showing lattice contraction relative to pristine Ni MOF. | main p.2, article p.8707 · Results and discussion · Figure 1 |
| Cladophora cellulose nanofibre @ Ni-HITP conductive MOF film (CCM)2021 · Solar-driven ionic power generation: Via a film of nanocellulose @ conductive metal-organic framework | Ni-HITP/cellulose compositeNi(II) in Ni-HITP nanolayers · HITP; Cladophora cellulose nanofibres as substrate | 2D · CompositeCore-shell nanofibres with Ni-HITP coating Cladophora cellulose; stacked/interwoven fibres form a freestanding hierarchical porous film. | p002 · Preparation and characterization of the CCM film · Fig. 1 |
| Direct-blended cellulose/Ni-HITP nanopaper2021 · Solar-driven ionic power generation: Via a film of nanocellulose @ conductive metal-organic framework | Ni-HITP particles/cellulose compositeNi(II) in Ni-HITP particles · HITP; Cladophora cellulose | 2D · CompositeComposite nanopaper made by direct blending of cellulose with Ni-HITP particles; lacks continuous charged cMOF surfaces. | p018 · Supplementary Results · Fig. S12 |
| F-Ni MOF2021 · Self-Nanocavity-Confined Halogen Anions Boosting the High Selectivity of the Two-Electron Oxygen Reduction Pathway over Ni-Based MOFs | F-confined Ni-HITP-type MOFPlanar Ni nodes interacting with confined fluoride anions. · HITP. | 2D · PristineHalogen-anion-confined conductive Ni MOF showing lattice contraction relative to pristine Ni MOF. | main p.2, article p.8707 · Results and discussion · Figure 1 |
| HITP-Ni-NS2021 · Uniaxially Oriented Electrically Conductive Metal-Organic Framework Nanosheets Assembled at Air/Liquid Interfaces | Ni3(HITP)2-like nanosheetNi(II) · HITP (deprotonated 2,3,6,7,10,11-hexaaminotriphenylene) | 2D · PristinePlanar honeycomb Ni2+-HITP network with pi-pi stacked layers; metrically hexagonal in-plane cell. | 54571 / p002 · Introduction · Figure 1 |
| I-Ni MOF2021 · Self-Nanocavity-Confined Halogen Anions Boosting the High Selectivity of the Two-Electron Oxygen Reduction Pathway over Ni-Based MOFs | I-confined Ni-HITP-type MOFPlanar Ni nodes interacting with confined iodide anions. · HITP. | 2D · PristineHalogen-anion-confined conductive Ni MOF showing lattice contraction relative to pristine Ni MOF. | main p.2, article p.8707 · Results and discussion · Figure 1 |
| Ni-HITP2021 · From n- To p-Type Material: Effect of Metal Ion on Charge Transport in Metal-Organic Materials | Ni3(HITP)2; reported analytical approximation Ni3(C18H12N6)1.8Cl0.6*4(H2O)Nickel ions in a metal-organic graphene analogue coordination environment. · HITP = 2,3,6,7,10,11-hexaiminotriphenylene. | 2D · PristineCrystalline layered metal-organic graphene analogue; used as the Ni control for metal substitution. | p001 · Abstract |
| Ni-HITP conductive metal-organic framework2021 · Solar-driven ionic power generation: Via a film of nanocellulose @ conductive metal-organic framework | Ni3(2,3,6,7,10,11-hexaiminotriphenylene)2Ni(II) · 2,3,6,7,10,11-hexaiminotriphenylene (HITP) | 2D · PristineLayered conductive MOF with ordered approximately 2 nm nanopores in a hexagonal arrangement; assigned by TEM/HRTEM and XRD reflections. | p002 · Preparation and characterization of the CCM film · Fig. 1 |
| Ni3(HITP)22021 · Why conductivity is not always king-physical properties governing the capacitance of 2D metal-organic framework-based EDLC supercapacitor electrodes: A Ni3(HITP)2case study | Ni3(HITP)2Square-planar Ni2+ ions bound through imine/iminosemiquinonate linkages. · HITP = 2,3,6,7,10,11-hexaiminotriphenylene, generated from HATP.6HCl precursor. | 2D · PristineGraphene-like two-dimensional sheets with slipped parallel stacking and tubular channels about 1.6 nm in diameter. | main p.2, article p.299 · Main text |
| Ni3(HITP)22021 · Two-Dimensional Conductive Metal-Organic Frameworks as Highly Efficient Electrocatalysts for Lithium-Sulfur Batteries | Ni3(HITP)2Ni transition-metal nodes coordinated by N/O/S donor atoms in the 2D framework · HITP (2,3,6,7,10,11-hexaiminotriphenylene; C18H12N6) | 2D · Model SystemN-coordinated TM3(HITP)2 kagome 2D MOF; periodic monolayer slab model with kagome sublattice where applicable. | PDF p2 / article p.61206 · Introduction |
| Ni3(HITP)2 bulk powder2021 · Uniaxially Oriented Electrically Conductive Metal-Organic Framework Nanosheets Assembled at Air/Liquid Interfaces | Ni3(HITP)2Ni(II) · HITP | 2D · PristineBulk polycrystalline layered 2D conductive MOF reference. | S4 / p004 · Synthesis of Ni3(HITP)2 bulk powder |
| Ni3(HITP)2 electrode composite2021 · Spindle-like Ni3(HITP)2 MOFs: Synthesis and Li+ storage mechanism | Ni3(HITP)2 powder/conductive carbon/CMC-SBR binder, 60:20:20 by weightNi sites from Ni3(HITP)2 component · HITP in Ni3(HITP)2 component; CMC/SBR polymer binder | 2D · CompositeComposite electrode film on Cu foil; framework structure retained before/after charge according to XRD. | 2 · 2.3 Electrochemical characterization |
| Pristine Ni MOF2021 · Self-Nanocavity-Confined Halogen Anions Boosting the High Selectivity of the Two-Electron Oxygen Reduction Pathway over Ni-Based MOFs | Ni-HITP-type MOF; exact empirical formula not directly reported in this paperPlanar Ni nodes; Ni2+ features observed by Ni 2p XPS. · 2,3,6,7,10,11-hexaiminotriphenylene (HITP). | 2D · PristineConductive Ni-based MOF with periodic nanocavity array within the a-b plane; (100) diffraction peak at 2theta = 4.5 degrees and d spacing approx 1.8 nm. | main p.2, article p.8707 · Results and discussion · Figure 1 |
| spindle-like Ni3(HITP)2 MOFs2021 · Spindle-like Ni3(HITP)2 MOFs: Synthesis and Li+ storage mechanism | Ni3(HITP)2Ni2+ coordinated by imine/amino N sites · 2,3,6,7,10,11-hexaiminotriphenylene (HITP), generated from HATP.6HCl | 2D · PristineD4h-coordination honeycomb 2D lattice; slipped-parallel AB stacking inferred from pore-size mismatch; spindle-like morphology assembled from nanofibres. | 2 · Results and discussion · Fig. 1a |
| Wood nanocellulose @ Ni-HITP film2021 · Solar-driven ionic power generation: Via a film of nanocellulose @ conductive metal-organic framework | Ni-HITP/wood nanocellulose compositeNi(II) in Ni-HITP · HITP; wood nanocellulose substrate | 2D · CompositeNi-HITP grown or deposited on wood nanocellulose; XRD and N2 sorption were reported in SI. | p020 · Supplementary Results · Fig. S15 |
| La0.6Sr0.4Co0.8Fe0.2O3@Ni3(HITP)22020 · Conductive metal–Organic frameworks endow high-efficient oxygen evolution of La0·6Sr0·4Co0·8Fe0·2O3 perovskite oxide nanofibers | La0.6Sr0.4Co0.8Fe0.2O3@Ni3(HITP)2La/Sr/Co/Fe perovskite oxide with Ni nodes in the MOF shell · HITP linker in the Ni3(HITP)2 component | 1D · CompositeComposite hollow nanofibres with a thin amorphous Ni3(HITP)2 layer uniformly bonded to LSCF nanofibres. | 3 · Results and discussion · Fig. 2c-e |
| Ni-HITP comparison model2020 · Two-Dimensional Conductive Ni-HAB as a Catalyst for the Electrochemical Oxygen Reduction Reaction | Ni-HITP 2D MOF model; empirical formula not statedNi(II) nodes · hexaiminotriphenylene (HITP) | 2D · Model SystemClosely related conductive 2D MOF with larger nanopores and honeycomb structure, included as a computational comparison. | 39078 · Theoretical Activity of M-HAB · Figure 4 |
| Ni3(HITP)22020 · Continuous Electrical Conductivity Variation in M3(Hexaiminotriphenylene)2(M = Co, Ni, Cu) MOF Alloys | Ni3(HITP)2Ni(II) · HITP = 2,3,6,7,10,11-hexaiminotriphenylene | 2D · PristineLayered electrically conducting MOF; synchrotron PXRD Pawley refinements fit orthorhombic Cmcm for pure M3(HITP)2; alloys are isostructural solid solutions following Vegard-type trends. | 12368-12369 · Results and Discussion · Figures 2-3; Table S1 |
| Ni3(HITP)22020 · Conductive metal–Organic frameworks endow high-efficient oxygen evolution of La0·6Sr0·4Co0·8Fe0·2O3 perovskite oxide nanofibers | Ni3(HITP)2Ni nodes · HITP from HATP.6HCl, described in reagents as 2,3,6,7,10,11-hexaiminotriphenylene | unknown · PristineConductive metal-organic framework; in this paper the deposited Ni3(HITP)2 phase is described as amorphous or below the XRD detection limit. | 2 · Introduction |
| Ni3(HITP)2 conductive MOF2020 · Conductive Metal–Organic Frameworks with Extra Metallic Sites as an Efficient Electrocatalyst for the Hydrogen Evolution Reaction | Ni3(HITP)2Ni-N4 linkages · HITP, hexaiminotriphenylene | 2D · PristineTraditional conductive HITP-based MOF control with Ni-N4 linkages and no extra M-N2 sites. | main p.8, article p.2000012-8 · Experimental Section |
| CNF-Ni-HITP direct-mixed paper2019 · Cellulose Nanofiber @ Conductive Metal-Organic Frameworks for High-Performance Flexible Supercapacitors | CNF plus Ni-HITP powder, 85:15 CNF:c-MOF by weightNi(II) in Ni-HITP particles · HITP | 2D · CompositePhysical mixture control paper made by direct mixing c-MOF powders and CNFs rather than interfacial nanolayer growth. | rendered page 4 / article p.9581 · Results and Discussion · Figure 2b and Figure 3e,f |
| CNF@Ni-HITP hybrid nanofibers / nanopaper2019 · Cellulose Nanofiber @ Conductive Metal-Organic Frameworks for High-Performance Flexible Supercapacitors | CNF@Ni-HITP; c-MOF content about 15 wt % in nanopaper by TGANi(II) in Ni-HITP nanolayers · HITP | 2D · CompositeCore-shell composite nanofibers with continuous Ni-HITP nanolayers compactly wrapping cellulose nanofibers; assembled into freestanding conductive nanopaper. | rendered page 3 / article p.9580 · Results and Discussion · Figure 1c |
| Ni-HITP conductive metal-organic framework2019 · Cellulose Nanofiber @ Conductive Metal-Organic Frameworks for High-Performance Flexible Supercapacitors | Ni3(HITP)2Ni(II) · HITP (2,3,6,7,10,11-hexaaminotriphenylene) | 2D · PristinePorous honeycomb 2D framework with hexagonal unit cell; main text references Ni3(HITP)2 and reports XRD peaks consistent with Ni-HITP. | rendered pages 2-3 / article pp.9579-9580 · Introduction; Results and Discussion · Figure 1b,c |
| Ni-MOF / Ni3(HITP)22019 · Field-Effect Transistor Based on an in Situ Grown Metal-Organic Framework Film as a Liquid-Gated Sensing Device | Ni3(HITP)2Ni centres, described as Ni-N4 active sites in a two-dimensional framework · HITP derived from 2,3,6,7,10,11-hexaaminotriphenylene hexahydrochloride (HATP*6HCl) | 2D · PristineTwo-dimensional stacked-sheet conductive MOF; PXRD peaks at 2theta = 4.7, 9.5, 12.5, and 16.5 degrees matched previously reported Ni-MOF structural features. | p001 / article p.35935 · Abstract and Introduction |
| Ni3(hexaiminotriphenylene)2 / Ni3(HITP)22019 · Pressure-induced metallicity and piezoreductive transition of metal-centres in conductive 2-dimensional metal-organic frameworks | Ni3(C18H6N6)2 (abbreviated Ni3(HITP)2)Nickel centres coordinated to imino-nitrogen atoms in a 2D conductive MOF sheet · HITP = 2,3,6,7,10,11-hexaiminotriphenylene | 2D · Model System2D-connected conductive MOF; monolayer model studied under hydrostatic pressure. | 1 · Introduction · Fig. 1 |
| Ni3(HITP)22019 · Single Crystals of Electrically Conductive Two-Dimensional Metal-Organic Frameworks: Structural and Electrical Transport Properties | Ni3(2,3,6,7,10,11-hexaiminotriphenylene)2Ni/NH coordination nodes in a honeycomb 2D framework. · HITP, formed from 2,3,6,7,10,11-hexaaminotriphenylene hexahydrochloride (HATP.6HCl). | 2D · PristineLayered honeycomb conductive 2D MOF; HRTEM/FFT and PXRD support an eclipsed or near-eclipsed stacking configuration with continuous pores. | main p.1-4, article pp.1959-1962 · Abstract; Results and Discussion · Figures 1, 2 and 4a |
| Ni3(HITP)22019 · Conductive MOF-Modified Separator for Mitigating the Shuttle Effect of Lithium-Sulfur Battery through a Filtration Method | Ni3(HITP)2Ni2+ nodes · HITP = 2,3,6,7,10,11-hexaiminotriphenylene; prepared from HATP.6HCl | 2D · PristineConductive two-dimensional layered MOF with hexagonal pores and one-dimensional channels. | main p.2, article p.11460 · Introduction/Experimental Section · Scheme 1; Fig. S1 |
| Ni3(HITP)2-modified polypropylene separator2019 · Conductive MOF-Modified Separator for Mitigating the Shuttle Effect of Lithium-Sulfur Battery through a Filtration Method | Ni3(HITP)2/PVDF on PPNi2+ nodes in the Ni3(HITP)2 layer · HITP in Ni3(HITP)2 | 2D · CompositeComposite separator consisting of a Ni3(HITP)2-containing coating filtered onto a polypropylene separator. | main p.2, article p.11460 · Preparation of the Ni3(HITP)2-Modified Separator · Scheme 1 |
| Ni3(HITP)2 conductive two-dimensional metal-organic framework2018 · Selective reduction of CO2 by conductive MOF nanosheets as an efficient co-catalyst under visible light illumination | Ni3(HITP)2Ni2+ centres in square-planar Ni-N4 coordination units. · HITP, 2,3,6,7,10,11-hexaaminotriphenylene. | 2D · PristineStacked honeycomb 2D conductive MOF; PXRD matches eclipsed or slipped-parallel stacked 2D sheets and XPS supports a single Ni-N4 four-coordinate structure. | main p.2, article p.340 · Introduction · Fig. 1a |
| Ni3(HITP)2 hexagonal MOF2018 · Modular O2 electroreduction activity in triphenylene-based metal-organic frameworks | Ni3(HITP)2; HITP = 2,3,6,7,10,11-hexaiminotriphenyleneDivalent Ni coordinated by hexaaminotriphenylene-derived N donors in a 2D honeycomb lattice. · HITP / hexaaminotriphenylene-derived ligand. | 2D · PristineHexagonal crystal system; 2D honeycomb lattice stacked in a slipped parallel configuration along c. | 1 · Results and discussion · Fig. 1 |
| Ni3(HITP)2/[Ru(bpy)3]2+ hybrid photocatalytic CO2-reduction system2018 · Selective reduction of CO2 by conductive MOF nanosheets as an efficient co-catalyst under visible light illumination | Not specifiedNi-N4 sites in Ni3(HITP)2 plus Ru polypyridyl photosensitiser. · HITP in Ni3(HITP)2; bpy ligands in [Ru(bpy)3]2+. | unknown · CompositeApplication mixture, not a new crystalline MOF phase: Ni3(HITP)2 nanosheet co-catalyst, [Ru(bpy)3]Cl2.6H2O photosensitiser and TEOA electron donor in MeCN/H2O. | main p.1, article p.339 · Abstract |
| Ni3(HITP)22017 · Porous field-effect transistors based on a semiconductive metal-organic framework | Ni3(HITP)2Square-planar Ni2+ centres · HITP, 2,3,6,7,10,11-hexaiminotriphenylenesemiquinonate, generated from HATP | 2D · PristineLayered graphene-like honeycomb porous framework with sixfold symmetry, AB stacking, 1D channels and ca. 1.4 nm open windows. | main p.2 / article p.1361 · Results and discussion · Figure 1a |
| Ni3(HITP)22017 · A Microporous and Naturally Nanostructured Thermoelectric Metal-Organic Framework with Ultralow Thermal Conductivity | Ni3(2,3,6,7,10,11-hexaiminotriphenylene)2; precise analysed formula reported as Ni3(HITP)1.8Cl0.6·2(acetone)·4H2ONi2+ ions in a layered two-dimensional lattice · HITP3- = 2,3,6,7,10,11-hexaiminotriphenylene | 2D · PristineLayered honeycomb lattice with stacked 2D sheets and approximately 1.5 nm tubular pores parallel to the c direction; TEM/FFT gave hexagonal cell parameters a = b = 20.1 A and c = 6.6 A. | p003 / article p.169 · Introduction · Figure 1A |
| Ni3(HITP)22017 · Mechanistic Evidence for Ligand-Centered Electrocatalytic Oxygen Reduction with the Conductive MOF Ni3(hexaiminotriphenylene)2 | Ni3(HITP)2; crystal-structure formula cited as Ni3(C18H12N6)2Ni, square-planar divalent Ni-N coordination · HITP = 2,3,6,7,10,11-hexaiminotriphenylene / hexaaminotriphenylene-derived ligand | 2D · PristineElectrically conductive 2D MOF with slipped-parallel layer model; interlayer distance 3.33 Angstrom from previously reported crystal structure. | 7726 · Introduction · Figure 1 |
| Ni3(HITP)2 two-dimensional metal-organic framework model2017 · Two-dimensional metal-organic frameworks with high thermoelectric efficiency through metal ion selection | Ni3(HITP)2Ni square-planar d8 metal sites in X3(HITP)2. · HITP = 2,3,6,7,10,11-hexaiminotriphenylene. | 2D · Model SystemHexagonal monolayer X3(HITP)2 structure based on experimental Ni3(HITP)2; multilayer model considered separately and calculated to be metallic. | main p.2 / article p.19462 · Results and discussion |
| Ni3(hexaiminotriphenylene)22016 · Electrochemical oxygen reduction catalysed by Ni3 (hexaiminotriphenylene)2 | Ni3(HITP)2; HITP = 2,3,6,7,10,11-hexaiminotriphenyleneSquare-planar Ni-N4 sites in a nickel bis(iminosemiquinone/diimine-type) two-dimensional network. · 2,3,6,7,10,11-hexaiminotriphenylene (HITP), prepared from HATP.6HCl precursor. | 2D · PristineTwo-dimensionally layered conductive MOF, structurally reminiscent of M-Nx ORR electrocatalysts; long-range ab-plane order retained after ORR. | main p.2 · Introduction · Fig. 1 |
| Ni3(HITP)22015 · Cu3(hexaiminotriphenylene)2: An electrically conductive 2D metal-organic framework for chemiresistive sensing | Ni3(HITP)2Nickel sites in the isostructural M3(HITP)2 framework. · HITP = 2,3,6,7,10,11-hexaiminotriphenylene. | 2D · PristinePreviously reported isostructural 2D MOF comparator for Cu3(HITP)2. | main p.1, article p.4349 · Introduction |
| Ni3(HITP)2 (MOF 3)2015 · Chemiresistive Sensor Arrays from Conductive 2D Metal-Organic Frameworks | Ni3(HITP)2Ni square-planar metal centres · HITP (2,3,6,7,10,11-hexaiminotriphenylene) | 2D · PristineConductive layered hexagonal 2D MOF; sheets stack in eclipsed or slipped-parallel conformations with extended 1D pores. | main p002 / article page 13781 · Results · Figure 1 |