Anionic metal-organic framework modified separator boosting efficient Li-ion transport
Li J., Chen L., Wang F. et al. · Chemical Engineering Journal · 2023
Reported here: UiO-66
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7 papers
Li J., Chen L., Wang F. et al. · Chemical Engineering Journal · 2023
Reported here: UiO-66
Gaikwad S., Kim Y., Gaikwad R. et al. · Journal of Environmental Chemical Engineering · 2022
Reported here: UiO-66
Guan Z., Zhu S., Ding S. et al. · Chemosphere · 2022
Reported here: UiO-66
Wang S., Fan S., Fang Z. et al. · ACS Applied Nano Materials · 2021
Reported here: UiO-66
Somjit V., Thinsoongnoen P., Waiprasoet S. et al. · ACS Applied Materials and Interfaces · 2021
Reported here: UiO-66
Zhang Q., Li D., Wang J. et al. · Nanoscale · 2020
Reported here: UiO-66
Li W.-H., Ding K., Tian H.-R. et al. · Advanced Functional Materials · 2017
Reported here: UiO-66
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Raw names, formulas and structural assignments remain separate; no consensus value is inferred.
| Paper and reported name | Formula and components | Structure context | Source |
|---|---|---|---|
| UiO-662023 · Anionic metal-organic framework modified separator boosting efficient Li-ion transport | Zr6O4(OH)4(BDC)6, inferred conventional UiO-66 formulaZr6O4(OH)4 zirconium oxo clusters · BDC (terephthalate) | 3D · PristineUiO framework; XRD used as reference pattern with strong peaks at 7.6 and 8.5 degrees assigned to (111) and (002). | 2 · Result and discussion · Fig. 2b |
| UiO-662022 · Fe–O–Zr in MOF for effective photo-Fenton Bisphenol A degradation: Boosting mechanism of electronic transmission | Zr-BDC framework; exact formula not reported in main textZr-oxo clusters · Terephthalic acid / BDC | 3D · PristineUiO-66 crystalline phase with peaks at 7.38, 8.52, 14.84, 17.1, 22.26, 25.8, 30.79 and 40.95 degrees assigned to (111), (200), (222), (400), (511), (600), (711) and (860). | 3 · 3.1 Morphologies and structures of UiO-66 and FeUiO-X · Fig. 1a-b |
| UiO-662022 · Enhanced VOC adsorption capacity on MOF thin layer with reduced particle size by cryogrinding and microwave method | not reported in main textZr from zirconium chloride · terephthalic acid / BDC | 3D · PristineUiO-66 crystalline MOF prepared solvothermally; characteristic XRD peaks retained after cryogrinding. | 4 · 2.2.3 |
| UiO-662021 · NH2-UiO-66 Metal-Organic Framework Nanoparticles for Hydroxide Ion Conductive Photoswitches | Zr-based UiO-66 framework with terephthalate linkers; exact formula not reportedZr4+ oxo clusters · terephthalic acid / terephthalate (H2BDC-derived) | 3D · PristineUiO-66 framework used as non-amino control for light absorption comparison. | p003-p006 · Results and Methods · Figure 2a |
| UiO-662021 · Processable UiO-66 Metal-Organic Framework Fluid Gel and Electrical Conductivity of Its Nanofilm with Sub-100 nm Thickness | [Zr6O4(OH)4(1,4-benzenedicarboxylate)6]Zr6 oxo-hydroxo clusters / Zr nodes · 1,4-benzenedicarboxylate / terephthalate (BDC) | 3D · PristineUiO-66 topology retained in fluid gel and films by GIXRD; (111) peak around 7.4 degrees with d-spacing 11.5-12.0 A. | p003 / 30846 · Results and Discussion |
| UiO-662020 · Multiscale optimization of Li-ion diffusion in solid lithium metal batteries: Via ion conductive metal-organic frameworks | Zr6O4(OH)4(BDC)6Zr6O4(OH)4 clusters · BDC / 1,4-benzenedicarboxylate | 3D · PristineParent UiO-66 zirconium MOF used as a pristine/control framework and DFT model. | p003 / 6978 · Results and discussion · Fig. 1a,d |
| UiO-662017 · Conductive Metal–Organic Framework Nanowire Array Electrodes for High-Performance Solid-State Supercapacitors | not specified in this papernot specified in this paper · not specified in this paper | 3D · PristineLow-conductivity MOF control prepared by previously reported solvothermal conditions. | p.4, p.6 · Supercapacitors Performance; Experimental Section · Figure 3f; Table S1 |