Abstract
The photocatalytic sustainable production of furfural from biomass-derived platform compounds represents a promising green approach. Nevertheless, the low utilization efficiency of photogenerated charge carriers and uncontrollable product selectivity remain major bottlenecks restricting its development. In this study, a dual-functional photocatalyst of single-atom platinum modified indium zinc sulfide (Pt1/ZIS) was fabricated, enabling the simultaneous production of hydrogen (H2) and selective valorisation of furfuryl alcohol to furfural. On a metal basis, the optimized Pt1/ZIS exhibits a furfural formation rate of 1883 mmol gPt−1 h−1 and a H2 evolution rate of 1988 mmol gPt−1 h−1, which is 31-fold and 40-fold higher than those of its Pt nanoparticle counterpart, respectively. Such superior performance of Pt1/ZIS was demonstrated to stem from the facilitation of photogenerated charge separation, the generation of carbon radical intermediates, and the selective cleavage of O–H bonds in the α-hydroxy group on Pt single atoms. Substrate expansion experiments displayed that Pt1/ZIS catalyst can highly selectively oxidize nearly ten types of biomass alcohols into the corresponding aldehydes, accompanied by a high hydrogen generation rate.
| Original language | English |
|---|---|
| Pages (from-to) | 874-884 |
| Number of pages | 11 |
| Journal | Journal of Energy Chemistry |
| Volume | 120 |
| DOIs | |
| State | Published - Sep 2026 |
Keywords
- Bifunctional single-atom catalyst
- Biomass conversion
- Catalytic mechanism
- Hydrogen evolution
- Photocatalytic furfural production
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