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Ni/Co–HHTP family

This family merges chemical shorthand and formula variants only after verification against source articles. Per-paper composition and phase details remain separate below.

7primary papers
19material records
33linked samples
93linked measurements
404linked results
2020–2026publication span

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  • Pristine, composite, derived or model contexts are mixed

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Show 19 material identity records
Paper and reported nameFormula and componentsStructure contextSource
CoNi-HHTP conductive MOF (CNH (1:1))2026 · Bimetallic conductive MOF single crystals designed as high-performance anodes for lithium-ion batteriesCo-Ni-HHTP; nominal Co:Ni = 1:1Mixed Co/Ni centres from acetate tetrahydrate precursors. · HHTP2D · PristineBimetallic HHTP framework variant used to assess metal-ratio effects; XRD and cycling comparison are in SI figures.p.3 · Synthesis of CoNi-HHTP · Fig. S1; Fig. S6
CoNi-HHTP conductive MOF (CNH (3:1))2026 · Bimetallic conductive MOF single crystals designed as high-performance anodes for lithium-ion batteriesCo-Ni-HHTP; nominal Co:Ni = 3:1Mixed Co/Ni centres from acetate tetrahydrate precursors. · HHTP2D · PristineBimetallic HHTP framework variant used to assess metal-ratio effects; XRD and cycling comparison are in SI figures.p.3 · Synthesis of CoNi-HHTP · Fig. S1; Fig. S6
CoNi-HHTP conductive MOF (CNH, Co:Ni = 2:1)2026 · Bimetallic conductive MOF single crystals designed as high-performance anodes for lithium-ion batteriesCo-Ni-HHTP; exact empirical formula not reportedMixed Co/Ni centres from Co(CH3COO)2.4H2O and Ni(CH3COO)2.4H2O; nominal Co:Ni = 2:1 and EDS Co/Ni close to 2:1. · 2,3,6,7,10,11-hexahydroxytriphenylene (HHTP)2D · PristineBimetallic conductive MOF assigned as single-crystal CNH; XRD resembles simulated CH pattern, SAED shows single-crystal diffraction and HRTEM gives a 0.332 nm (004) lattice spacing.p.2 · Introduction
Co/Ni-HHTP2025 · In situ construction of a dual-metal 2D conjugated metal-organic framework on carbon paper for asymmetric supercapacitorsCo/Ni-HHTP, Co/Ni = 1:1 feed ratiomixed Co and Ni sites · HHTP2D · PristineNanorod-like bimetallic HHTP conductive MOF with honeycomb-like layered structure.Preparation method
Co/Ni-HHTP@CP2025 · In situ construction of a dual-metal 2D conjugated metal-organic framework on carbon paper for asymmetric supercapacitorsCo/Ni-HHTP grown on carbon papermixed Co and Ni sites coordinated to HHTP and interacting with oxygen groups on CP · HHTP2D · CompositeCo/Ni-HHTP nanorods grown on activated carbon paper as a composite electrode.2 · 2.2. Synthesis of M1/M2-HHTP@CP electrode materials · Figure 1e,f
Co/Ni-HHTP@CP||AC asymmetric supercapacitor2025 · In situ construction of a dual-metal 2D conjugated metal-organic framework on carbon paper for asymmetric supercapacitorsCo/Ni-HHTP@CP positive electrode || activated carbon negative electrode in 1 M KOHCo/Ni sites in positive c-MOF electrode · HHTP in positive electrode2D · CompositeApplication device assembled from Co/Ni-HHTP@CP and activated carbon electrodes.5 · 3. Results and discussion · Figure 4
Ni1Co2-HHTP2024 · Conductive Metal−Organic Frameworks for Rechargeable LiOH-Based Li−O2 BatteriesNixCoy-HHTP with Ni:Co feed ratio 1:2bimetallic Ni and Co centres · 2,3,6,7,10,11-hexahydroxytriphenylene (HHTP)2D · PristineBimetallic M-HHTP optimisation variant; detailed structure assumed from same M-HHTP synthesis family.S2 (p002) · Figure S1 caption · Figure S1
Ni2Co1-HHTP2024 · Conductive Metal−Organic Frameworks for Rechargeable LiOH-Based Li−O2 BatteriesNixCoy-HHTP with Ni:Co feed ratio 2:1bimetallic Ni and Co centres · 2,3,6,7,10,11-hexahydroxytriphenylene (HHTP)2D · PristineBimetallic M-HHTP optimisation variant; detailed structure assumed from same M-HHTP synthesis family.S2 (p002) · Figure S1 caption · Figure S1
NiCo-HHTP2024 · Conductive Metal−Organic Frameworks for Rechargeable LiOH-Based Li−O2 BatteriesM-HHTP, M = Ni/Co; optimised feed ratio Ni1Co1-HHTPbimetallic Ni and Co centres; XPS assigns Ni2+/Ni3+ and Co2+/Co3+ · 2,3,6,7,10,11-hexahydroxytriphenylene (HHTP)2D · PristineTriphenylene-based conductive 2D MOF; metal ions coordinated by HHTP oxygen atoms, forming pi-d conjugated parallel building units stacked by van der Waals interactions.12027 (p001) · Abstract
NiCo-HHTP2024 · Successful In Situ Growth of Conductive MOFs on 2D Cobalt-Based Compounds and Their Electrochemical PerformanceM-HHTP, M = NiCo (Ni2+/Co2+ = 1:1); HHTP ligandmixed Ni2+/Co2+ nodes · HHTP = 2,3,6,7,10,11-hexahydroxytriphenylene2D · PristineMixed-metal conductive HHTP framework; shorter agglomerated nanorods.article p. 10326 · Results and Discussion · Figure S1
NiCo-HHTP@Co(OH)22024 · Successful In Situ Growth of Conductive MOFs on 2D Cobalt-Based Compounds and Their Electrochemical PerformanceNiCo-HHTP@Co(OH)2 compositeNi2+/Co2+ HHTP framework grown on Co(OH)2 · HHTP = 2,3,6,7,10,11-hexahydroxytriphenylene2D · CompositeIn situ grown conductive M-HHTP nanoarrays/nanorods on a 2D cobalt-based compound substrate.article p. 10326 · Results and Discussion · Figure 1
NiCo-HHTP@Co3O42024 · Successful In Situ Growth of Conductive MOFs on 2D Cobalt-Based Compounds and Their Electrochemical PerformanceNiCo-HHTP@Co3O4 compositeNi2+/Co2+ HHTP framework grown on Co3O4 · HHTP = 2,3,6,7,10,11-hexahydroxytriphenylene2D · CompositeIn situ grown conductive M-HHTP nanoarrays/nanorods on a 2D cobalt-based compound substrate.article p. 10326 · Results and Discussion · Figure 1
NiCo-HHTP@CoP2024 · Successful In Situ Growth of Conductive MOFs on 2D Cobalt-Based Compounds and Their Electrochemical PerformanceNiCo-HHTP@CoP compositeNi2+/Co2+ HHTP framework grown on CoP · HHTP = 2,3,6,7,10,11-hexahydroxytriphenylene2D · CompositeIn situ grown conductive M-HHTP nanoarrays/nanorods on a 2D cobalt-based compound substrate.article p. 10326 · Results and Discussion · Figure 1
Ni-Co-CAT; Ni-Co-catecholate; Ni/Co-CAT2022 · Preparation of Bimetallic Conductive Metal-organic Framework Material Ni/Co-CAT for Electrocatalytic Oxygen Reduction 双金属导电金属有机框架材料 Ni/Co-CAT 的制备及其氧还原催化性能研究Not specifiedNi, Co · 2,3,6,7,10,11-hexahydroxytriphenylene (HHTP)2D · PristineBimetallic conductive metal-catecholate MOF assigned as a porous two-dimensional layered hexagonal structure with M-O6 (M = Ni or Co) active sites.749-750 · 2.1 · Figure 1d,e
NiCo-HHTP bimetal-organic framework nanorods2022 · Conductive NiCo bimetal-organic framework nanorods with conductivity-enhanced electrochemiluminescence for constructing biosensing platform[NixCo9-x(HHTP)4(H2O)30]Mixed Ni/Co nodes; Ni2+ and Co2+ assigned by XPS · HHTP = 2,3,6,7,10,11-hexahydroxytriphenyleneunknown · PristinePXRD was reported to be consistent with experimental and simulated Ni-HHTP patterns; described as isostructural with Ni-HHTP.1 · Abstract
NiCo-HHTP/PtNP/H1/MCH ECL biosensor interface2022 · Conductive NiCo bimetal-organic framework nanorods with conductivity-enhanced electrochemiluminescence for constructing biosensing platformNot specifiedNiCo-HHTP mixed Ni/Co nodes plus platinum nanoparticles · HHTP in NiCo-HHTP; DNA hairpins H1/H3-Fc and MCH in sensor assemblyunknown · CompositeComposite electrode interface fabricated on glassy carbon electrode for ECL biosensing.2 · Introduction · Scheme 1B
Co0.4Ni0.6-CAT2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activityCo0.4Ni0.6-CAT, nominal CoxNi1-x-CAT with x = 0.4Mixed Co/Ni nodes · HHTP2D · PristineBimetallic M-CAT; similar PXRD pattern to isostructural Co-CAT.2 · Synthesis of CoxNi1-x-CATs
Co0.6Ni0.4-CAT2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activityCo0.6Ni0.4-CAT, nominal CoxNi1-x-CAT with x = 0.6Mixed Co/Ni nodes · HHTP2D · PristineBimetallic conductive M-CAT; similar PXRD pattern to Co-CAT; hexagonal nanorods.2 · Synthesis of CoxNi1-x-CATs
Co0.8Ni0.2-CAT2020 · Trimetallic conductive metal-organic frameworks as precatalysts for the oxygen evolution reaction with enhanced activityCo0.8Ni0.2-CAT, nominal CoxNi1-x-CAT with x = 0.8Mixed Co/Ni nodes · HHTP2D · PristineBimetallic M-CAT; similar PXRD pattern to isostructural Co-CAT.3 · Results and discussion