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Synergetic surface modulation of ZnO/Pt@ZIF-8 hybrid nanorods for enhanced photocatalytic CO2 valorization

纳米棒 覆盖层 材料科学 光催化 化学工程 吸附 肖特基势垒 纳米颗粒 催化作用 纳米技术 光电子学 化学 生物化学 有机化学 物理化学 二极管 工程类
作者
Xiao Li,Wanmei He,Chuanhao Li,Bo Song,Shengwei Liu
出处
期刊:Applied Catalysis B-environmental [Elsevier BV]
卷期号:287: 119934-119934 被引量:144
标识
DOI:10.1016/j.apcatb.2021.119934
摘要

Artificial photosynthesis, photocatalytic conversion of greenhouse gas CO2 into value-added solar fuels, is a promising strategy for mitigating greenhouse effect and solving energy crisis. ZnO is extensively studied for CO2 valorization, but still generally suffering from retarded charge separation and utilization, and limited CO2 capture and activation. To overcome those disadvantages, novel rod-like core-shell ZnO/[email protected] hybrid photocatalysts with transparent conductive adsorption layers are constructed, with Pt nanoparticles mainly interspersing at the interface of ZnO nanorods and ZIF-8 overlayer. Significantly, the charge potential and dynamics are greatly improved in ZnO/[email protected], owing to the unique synergetic effects of surface passivation effects of ZIF-8 overlayer and Schottky junction effects at ZnO/Pt interface. Moreover, because of the highly porous and transparent features of ZIF-8 overlayer together with the cocatalyst effects of interspersed Pt nanoparticles, the adsorption and activation of CO2 over ZnO/[email protected] can be enhanced simultaneously, without shielding the light harvesting. As a consequence, the photocatalytic CO2 conversion efficiency and selectivity of ZnO/[email protected] hybrid nanorods are significantly enhanced. In particular, the CH3OH evolution rate can be optimized as high as 1.13 μmol g−1 h−1, being 16 and 1.8 times more efficient than the pristine ZnO and binary ZnO/Pt nanorods, respectively. This study will inspire further studies on constructing hybrid photocatalysts with transparent conductive adsorption centers for artificial photosynthesis by synergetic modulation of surface functionalities and integrative regulation of key photocatalytic processes.
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