Enhanced VOC adsorption capacity on MOF thin layer with reduced particle size by cryogrinding and microwave method
Gaikwad S., Kim Y., Gaikwad R. et al. · Journal of Environmental Chemical Engineering · 2022
Reported here: MIL-101(Cr)
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2 papers
Gaikwad S., Kim Y., Gaikwad R. et al. · Journal of Environmental Chemical Engineering · 2022
Reported here: MIL-101(Cr)
Lai X., Liu Y., Yang G. et al. · Journal of Materials Chemistry A · 2017
Reported here: MIL-101(Cr)
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| Paper and reported name | Formula and components | Structure context | Source |
|---|---|---|---|
| MIL-101(Cr)2022 · Enhanced VOC adsorption capacity on MOF thin layer with reduced particle size by cryogrinding and microwave method | not reported in main textCr from chromium nitrate nonahydrate · terephthalic acid / BDC | 3D · PristineMIL-101(Cr) crystalline MOF prepared solvothermally; characteristic XRD peaks retained after cryogrinding. | 4 · 2.2.4 |
| MIL-101(Cr)2017 · Controllable proton-conducting pathways: Via situating polyoxometalates in targeting pores of a metal-organic framework | MIL-101 chromium terephthalate frameworkTrimeric chromium(III) clusters · Terephthalic acid / benzene-1,4-dicarboxylate | 3D · PristineMIL-101 framework with smaller Cage A and larger Cage B forming linear Pore A and zigzag Pore B tunnel profiles. | main p.1 · Introduction · Fig. 1 |