Ultrathin BiOCl Single-Crystalline Nanosheets with Large Reactive Facets Area and High Electron Mobility Efficiency: A Superior Candidate for High-Performance Dye Self-Photosensitization Photocatalytic Fuel Cell

材料科学 光催化 光电流 罗丹明B 吸附 能量转换效率 降级(电信) 化学工程 法拉第效率 电子转移 光化学 辐照 半导体 纳米技术 光电子学 催化作用 电极 电解质 有机化学 化学 电信 物理 物理化学 计算机科学 核物理学 工程类
作者
Lei Zhang,Cheng-Gang Niu,Xiufei Zhao,Chao Liang,Hai Guo,Guangming Zeng
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:10 (46): 39723-39734 被引量:53
标识
DOI:10.1021/acsami.8b14227
摘要

Strong dye adsorption and fast electron transfer are of crucial importance to achieve high conversion efficiency of dye self-photosensitization photocatalytic fuel cells (DSPFCs). In this study, we have experimentally achieved the enhanced cell performance in ultrathin BiOCl{010} (BOC(010)-U) nanosheets and provide an idea to investigate the relationship between the physical structure and the chemical performance of semiconductor materials. Experimental phenomenon showed that the exposed areas of highly active {010} facets were remarkably enhanced with the decrease of the BiOCl thickness. The large area of {010} facets with abundant active sites and open channel characteristic were exposed to facilitate photosensitization process, and the atomically thin structure was designed to speed up electron transfer. By employing 40 mL of 5 mg/L rhodamine B as fuel, it was found that the BOC(010)-U photoanode exhibited superior photovoltaic performance and photocatalytic degradation activity than other materials in the DSPFC system, whose Jsc and Voc were measured to be 0.00865 mA/cm2 and 0.731 V, respectively. Besides, about 72% color removal efficiency and 10.77% Coulombic efficiency were obtained under visible light irradiation for 240 min. The experimental results and multiple characterizations demonstrated that the strong dye adsorption ability and efficient charge migration were responsible for the sustaining generation of photocurrent and enhancement of pollutants degradation activity.
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