三氧化钨
分解水
制氢
光催化
光催化分解水
材料科学
钨
光化学
氢
化学
无机化学
纳米技术
催化作用
有机化学
作者
Madasamy Thangamuthu,Kiran Vankayala,Lunqiao Xiong,Stuart Conroy,Xiaolei Zhang,Junwang Tang
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2023-06-26
卷期号:13 (13): 9113-9124
被引量:22
标识
DOI:10.1021/acscatal.3c01312
摘要
The stoichiometric water splitting using a solar-driven Z-scheme approach is an emerging field of interest to address the increasing renewable energy demand and environmental concerns. So far, the reported Z-scheme must comprise two populations of photocatalysts. In the present work, only tungsten oxides are used to construct a robust Z-scheme system for complete visible-driven water splitting in both neutral and alkaline solutions, where sodium tungsten oxide bronze (Na0.56WO3-x) is used as a H2 evolution photocatalyst and two-dimensional (2D) tungsten trioxide (WO3) nanosheets as an O2 evolution photocatalyst. This system efficiently produces H2 (14 μmol h-1) and O2 (6.9 μmol h-1) at an ideal molar ratio of 2:1 in an aqueous solution driven by light, resulting in a remarkably high apparent quantum yield of 6.06% at 420 nm under neutral conditions. This exceptional selective H2 and O2 production is due to the preferential adsorption of iodide (I-) on Na0.56WO3-x and iodate (IO3-) on WO3, which is evidenced by both experiments and density functional theory calculation. The present liquid Z-scheme in the presence of efficient shuttle molecules promises a separated H2 and O2 evolution by applying a dual-bed particle suspension system, thus a safe photochemical process.
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