Effective Photocatalytic Ethanol Reforming into High‐Value‐Added Multicarbon Compound Coupled with H2 Production Over Pt‐S3 Sites at PtSA–ZnIn2S4 Interface

Author:

Wu Shiting1ORCID,Li Xiaohui2,Liu Jiaqi1,Wu Hanfeng1,Xu Hanshuai2,Bai Wangfeng1ORCID,Mao Liang3,Shi Xiaowei2ORCID

Affiliation:

1. New Energy Materials Research Center College of Materials & Environmental Engineering Hangzhou Dianzi University Hangzhou 310018 P. R. China

2. Department of Applied Chemistry Zhejiang University of Technology Hangzhou Zhejiang 310014 P. R. China

3. School of Materials Science and Physics China University of Mining and Technology Xuzhou 221116 P. R. China

Abstract

AbstractSelective photocatalytic production of high‐value acetaldehyde concurrently with H2 from bioethanol is an appealing approach to meet the urgent environment and energy issues. However, the difficult ethanol dehydrogenation and insufficient active sites for proton reduction within the catalysts, and the long spatial distance between these two sites always restrict their catalytic activity. Here, guided by the strong metal‐substrate interaction effect, an atomic‐level catalyst design strategy to construct Pt‐S3 single atom on ZnIn2S4 nanosheets (PtSA‐ZIS) is demonstrated. As active center with optimized H adsorption energy to facilitate H2 evolution reaction, the unique Pt single atom also donates electrons to its neighboring S atoms with electron‐enriched sites formed to activate the O─H bond in *CH3CHOH and promote the desorption of *CH3CHO. Thus, the synergy between Pt single atom and ZIS together will reduce the energy barrier for the ethanol oxidization to acetaldehyde, and also narrow the spatial distance for proton mass transfer. These features enable PtSA‐ZIS photocatalyst to produce acetaldehyde with a selectivity of ≈100%, which will spontaneously transform into 1,1‐diethoxyethane via acetalization to avoid volatilization. Meanwhile, a remarkable H2 evolution rate (184.4 µmol h−1) is achieved with a high apparent quantum efficiency of 10.50% at 400 nm.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Provincial Universities of Zhejiang

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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