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Systematic engineering of BiVO_(4)photoanode for efficient photoelectrochemical water oxidation
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作者 Zhiting Liang Meng Li +6 位作者 Kai‐Hang Ye tongxin tang Zhan Lin Yuying Zheng Yongchao Huang Hongbing Ji Shanqing Zhang 《Carbon Energy》 SCIE EI CAS 2024年第4期12-21,共10页
BiVO_(4)is one of the most promising photoanode materials for photoelectrochemical(PEC)solar energy conversion,but it still suffers from poor photocurrent density due to insufficient light‐harvesting efficiency(LHE),... BiVO_(4)is one of the most promising photoanode materials for photoelectrochemical(PEC)solar energy conversion,but it still suffers from poor photocurrent density due to insufficient light‐harvesting efficiency(LHE),weak photogenerated charge separation efficiency(Φ_(Sep)),and low water oxidation efficiency(Φ_(OX)).Herein,we tackle these challenges of the BiVO_(4)photoanodes using systematic engineering,including catalysis engineering,bandgap engineering,and morphology engineering.In particular,we deposit a NiCoO_(x)layer onto the BiVO_(4)photoanode as the oxygen evolution catalyst to enhance theΦ_(OX)of Fe‐g‐C_(3)N_(4)/BiVO_(4)for PEC water oxidation,and incorporate Fe‐doped graphite‐phase C_(3)N_(4)(Fe‐g‐C_(3)N_(4))into the BiVO_(4)photoanode to optimize the bandgap and surface areas to subsequently expand the light absorption range of the photoanode from 530 to 690 nm,increase the LHE andΦ_(Sep),and further improve the oxygen evolution reaction activity of the NiCoO_(x)catalytic layer.Consequently,the maximum photocurrent density of the as‐prepared NiCoO_(x)/Fe‐g‐C_(3)N_(4)/BiVO_(4)is remarkably boosted from 4.6 to 7.4 mA cm^(−2).This work suggests that the proposed systematic engineering strategy is exceptionally promising for improving LHE,Φ_(Sep),andΦ_(OX)of BiVO_(4)‐based photoanodes,which will substantially benefit the design,preparation,and large‐scale application of next‐generation high‐performance photoanodes. 展开更多
关键词 bismuth vanadate carbon nitride charge separation heterojunction water oxidation
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钒酸铋光电催化分解水的研究进展 被引量:2
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作者 叶凯航 汤桐鑫 +3 位作者 梁志庭 纪红兵 林展 杨世和 《科学通报》 EI CAS CSCD 北大核心 2022年第19期2115-2125,共11页
光电化学(photoelectrochemical,PEC)催化分解水制氢被认为是生态友好、规模化和可持续性地转化与储存太阳能的理想途径之一,但光阳极较低的工作效率限制了PEC分解水的发展.近年来,钒酸铋光阳极因具有较高的理论光电流密度受到科学界的... 光电化学(photoelectrochemical,PEC)催化分解水制氢被认为是生态友好、规模化和可持续性地转化与储存太阳能的理想途径之一,但光阳极较低的工作效率限制了PEC分解水的发展.近年来,钒酸铋光阳极因具有较高的理论光电流密度受到科学界的广泛关注.大量的工作聚焦在如何将钒酸铋光阳极所具有的理论潜力尽可能地发挥并应用至PEC分解水制氢.本文通过回顾和分析钒酸铋光阳极的吸光效率、光生载流子分离效率与表面催化产氧效率3个方面的研究进展,对高性能钒酸铋光阳极的设计思路与合成方法进行评述、总结与展望,为进一步挖掘钒酸铋光电极的潜力与开发下一代光电极提供参考和思路. 展开更多
关键词 光电催化 分解水 钒酸铋 光阳极
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