Enhanced bioelectrochemical performance caused by porous metal-organic framework MIL-53(Fe) as the catalyst in microbial fuel cells
Wang H., Jiang L., Chen J. et al. · Process Biochemistry · 2020
Reported here: MIL-53(Fe)
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3 papers
Wang H., Jiang L., Chen J. et al. · Process Biochemistry · 2020
Reported here: MIL-53(Fe)
Yuan B., Li C., Liu Y. et al. · International Journal of Hydrogen Energy · 2019
Reported here: MIL-53(Fe)
Zhang B., Dong G., Wang L. et al. · Catalysis Science and Technology · 2017
Reported here: MIL-53(Fe)
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| Paper and reported name | Formula and components | Structure context | Source |
|---|---|---|---|
| MIL-53(Fe)2020 · Enhanced bioelectrochemical performance caused by porous metal-organic framework MIL-53(Fe) as the catalyst in microbial fuel cells | Fe-based MIL-53 framework; described as infinite FeO4(OH)2 clusters connected by H2BDC ligandsFe-containing clusters; infinite FeO4(OH)2 clusters · 1,4-benzenedicarboxylic acid / terephthalic acid (H2BDC) | 3D · PristineThree-dimensional porous MIL-53(Fe) crystal with XRD peaks assigned to (001), (100) and (010) planes. | 1-2 · Abstract; Introduction |
| MIL-53(Fe)2019 · Nanocubic bimetallic organic framework self-templated from Ni precursor as efficient electrocatalysts for oxygen evolution reaction | MIL-53(Fe); exact formula not reportedFe centres · terephthalic acid / terephthalate | 3D · PristineFe-based MIL-53 MOF; XRD matched simulated/reported MIL-53(Fe) patterns. | 11708 · Morphology and structure characterization · Fig. S6 |
| MIL-53(Fe)2017 · Efficient hydrogen production from MIL-53(Fe) catalyst-modified Mo: BiVO4 photoelectrodes | Fe(OH){O2C-C6H4-CO2}Fe(III) octahedral chains sharing OH groups · Terephthalate / benzene-1,4-dicarboxylate | 3D · PristineMIL-53(Fe) framework; monoclinic symmetry by XRD; 3D framework with a one-dimensional pore channel system. | 1, 3 · Introduction; Results and discussion · Fig. 1 |