| Literature DB >> 35493156 |
Shu-Rong Li1, Feng-Di Ren1, Lin Wang1, Yu-Zhen Chen1.
Abstract
Two bifunctional CdS-MOF composites have been designed and fabricated. The hybrids exhibited synergistic photocatalytic performance toward two cascade reactions under visible light integrating photooxidation activity of CdS and Lewis acids/bases of the MOF. The composite further promoted the photodegradation of dyes benefiting from effective electron transfer between the MOF and CdS. This journal is © The Royal Society of Chemistry.Entities:
Year: 2021 PMID: 35493156 PMCID: PMC9043023 DOI: 10.1039/d1ra05957b
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Scheme 1Schematic illustration for the preparation of CdS/MOF hybrid.
Fig. 1(a) PXRD patterns of simulated NH2-MIL-125, as-synthesized NH2-MIL-125, and CdS/NH2-MIL-125. (b) N2 sorption isotherms of NH2-MIL-125 and 15 wt% CdS/NH2-MIL-125 at 77 K. (c) SEM and (d) TEM images of 15 wt% CdS/NH2-MIL-125 and (inset in d) the corresponding size distribution of CdS NPs.
Cascade reactions of benzyl alcohol oxidation followed by Knoevenagel condensationa
|
| |||||
|---|---|---|---|---|---|
| Entry | Catalyst | Time/h | Solvent | Conv. of 1 | Select. of 2 |
| 1 | 15 wt% CdS/NH2-MIL-125 | 24 | CH3CN | 97% | 93% |
| 2 | 30 wt% CdS/NH2-MIL-125 | 24 | CH3CN | 86% | 89% |
| 3 | 7.5 wt% CdS/NH2-MIL-125 | 24 | CH3CN | 74% | 91% |
| 4 | CdS + NH2-MIL-125 | 24 | CH3CN | 20% | 100% |
| 5 | NH2-MIL-125 | 24 | CH3CN | — | — |
| 6 | CdS | 24 | CH3CN | 96% | 5% |
| 7 | 15 wt% CdS/NH2-MIL-125 | 24 | CH3CN | — | — |
| 8 | No catalyst | 24 | CH3CN | — | — |
| 9 | 15 wt% CdS/NH2-MIL-125 | 6 | CH3CN | 69% | 72% |
| 10 | 15 wt% CdS/NH2-MIL-125 | 16 | CH3CN | 94% | 80% |
| 11 | 15 wt% CdS/NH2-MIL-125 | 20 | CH3CN | 96% | 85% |
| 12 | 15 wt% CdS/NH2-MIL-125 | 24 | DMF | — | — |
| 13 | 15 wt% CdS/NH2-MIL-125 | 24 | MeOH | 10% | 100% |
| 14 | 15 wt% CdS/NH2-MIL-125 | 24 | CH3CN | — | — |
| 15 | 15 wt% CdS/NH2-MIL-125 | 24 | CH3CN | 95% | 73% |
| 16 | 7.5 wt% CdS@MIL-101 | 24 | CH3CN | 90% | — |
Reaction conditions: 0.5 mmol benzyl alcohol, 1.5 mmol malononitrile, 100 mg catalysts, 5 mL solvent, 80 °C, visible light (λ ≥ 420 nm).
15 mg CdS + 85 mg NH2-MIL-125.
No products or negligible products.
Without visible light irradiation.
RT.
50 °C.
Cascade reaction of benzyl alcohol oxidation and the coupling reaction between benzaldehyde and aniline by different catalystsa
|
| |||||
|---|---|---|---|---|---|
| Entry | Catalyst |
| Conv. (%) | Select. (%) | |
| –CHO | Product | ||||
| 1 | CdS | 2 | 30 | 100 | |
| 2 | 30 wt% CdS@MIL-101 | 2 | 62 | 100 | |
| 4 | 100 | 100 | |||
| 3 | 15 wt% CdS@MIL-101 | 2 | 56 | 100 | |
| 4 | 61 | 100 | |||
| 4 | 7.5 wt% CdS@MIL-101 | 2 | 90 | 100 | |
| 2.5 | 100 | 100 | |||
| 5 | 3.75 wt% CdS@MIL-101 | 2 | 41 | 100 | |
| 6 | MIL-101 | 2 | 0 | ||
| 7 | 7.5 wt% CdS@MIL-101 | 2 | <10% | ||
| 8 | 7.5 wt% CdS@MIL-101 | 2 | <10% | ||
| 9 | 7.5 wt% CdS@MIL-101 | 2 | 0 | ||
| 10 | 15 wt% CdS/NH2-MIL-125 | 2 | <10% | 100 | |
Reaction conditions: 0.5 mmol benzyl alcohol, 0.5 mmol aniline, 10 mL toluene, visible light (λ ≥ 420 nm), O2 bubbling, 30 mg catalyst (CdS, 10 mg).
The solvent is DMF.
The solvent is MeOH.
Without light.
Fig. 2Plots of photodegradation rate of (a) methyl violet, (b) safranine T and (c) coomassie brilliant blue R250 by catalysts (C0 is the initial concentration and C is the concentration at any given time of the dye). (d) UV-Vis absorption spectra for methyl violet degradation by CdS/NH2-MIL-125. (e) The changed solution color as the MV degradation proceeds using CdS/NH2-MIL-125.
Fig. 3(a) UV-Vis DRS and (b) photocurrent test of samples. (c) Tauc plots of samples. (d) Mott–Schottky plots of CdS and NH2-MIL-125 in a 0.5 M Na2SO4 aqueous solution.