Yang Xiaotian, Cui Jianpeng, Lin Luxue, Bian Ang, Dai Jun, Du Wei, Guo Shiying, Hu Jingguo, Xu Xiaoyong
College of Physics Science and Technology, and Interdisciplinary Research Center, Yangzhou University, Yangzhou, 225002, China.
School of Science, Jiangsu University of Science and Technology, Zhenjiang, 212100, China.
Adv Sci (Weinh). 2024 Feb;11(5):e2305567. doi: 10.1002/advs.202305567. Epub 2023 Dec 7.
The optimization of charge transport with electron-hole separation directed toward specific redox reactions is a crucial mission for artificial photosynthesis. Bismuth vanadate (BiVO , BVO) is a popular photoanode material for solar water splitting, but it faces tricky challenges in poor charge separation due to its modest charge transport properties. Here, a concept of the external electron transport layer (ETL) is first proposed and demonstrated its effectiveness in suppressing the charge recombination both in bulk and at surface. Specifically, a conformal carbon capsulation applied on BVO enables a remarkable increase in the charge separation efficiency, thanks to its critical roles in passivating surface charge-trapping sites and building external conductance channels. Through decorated with an oxygen evolution catalyst to accelerate surface charge transfer, the carbon-encased BVO (BVO@C) photoanode manifests durable water splitting over 120 h with a high current density of 5.9 mA cm at 1.23 V versus the reversible hydrogen electrode (RHE) under 1 sun irradiation (100 mW cm , AM 1.5 G), which is an activity-stability trade-off record for single BVO light absorber. This work opens up a new avenue to steer charge separation via external ETL for solar fuel conversion.
针对特定氧化还原反应优化具有电子 - 空穴分离功能的电荷传输是人工光合作用的一项关键任务。钒酸铋(BiVO₄,BVO)是一种用于太阳能水分解的常用光阳极材料,但由于其电荷传输性能一般,在电荷分离方面面临棘手的挑战。在此,首次提出了外部电子传输层(ETL)的概念,并证明了其在抑制体相和表面电荷复合方面的有效性。具体而言,在BVO上应用保形碳包覆能够显著提高电荷分离效率,这得益于其在钝化表面电荷俘获位点和构建外部导电通道方面的关键作用。通过装饰析氧催化剂以加速表面电荷转移,碳包覆的BVO(BVO@C)光阳极在1个太阳光照射(100 mW/cm²,AM 1.5 G)下,相对于可逆氢电极(RHE)在1.23 V时表现出超过120小时的持久水分解,电流密度高达5.9 mA/cm²,这是单个BVO光吸收体的活性 - 稳定性权衡记录。这项工作为通过外部ETL引导电荷分离以实现太阳能燃料转换开辟了一条新途径。