Yu Shuangwei, Su Chunrong, Xiao Zhehui, Kuang Yi, Gong Xue, He Xiong, Liu Jinghua, Jin Qianqian, Sun Zijun
School of Electronic Engineering, Guangxi Key Laboratory of Multidimensional Information Fusion for Intelligent Vehicles, Guangxi University of Science and Technology Liuzhou 545000 China
RSC Adv. 2025 Jan 10;15(2):815-823. doi: 10.1039/d4ra08254k. eCollection 2025 Jan 9.
This study presents a novel approach to enhance photoelectrochemical (PEC) water oxidation by integrating cobalt phthalocyanine (CoPc) with bismuth vanadate (BVO) a direct solvothermal method. The as-prepared BVO@CoPc photoanode demonstrated a photocurrent density of 4.0 mA cm at 1.23 V RHE, which is approximately 3.1 times greater than that of the unmodified BVO, and has superior stability. The incident photon-to-current conversion efficiency (IPCE) of the BVO@CoPc photoanode reaches an impressive value of 81%, accompanied by significant enhancements in charge injection efficiency. This excellent performance can be ascribed to the enhanced hydrophilicity with the BVO/CoPc interface engineering, which facilitates interfacial interaction between the electrode and electrolyte, accelerates photogenerated charge carrier transfer and separation. Furthermore, compared to the immersion and drop-casting methods, the BVO@CoPc-S composite photoanode prepared the solvothermal method exhibits a significant improvement in interfacial contact and surface hydrophilicity. These findings highlight the potential of the strategy based on interfacial hydrophilicity modification to overcome key limitations in PEC water splitting, providing a pathway to more efficient and durable photoanode design.
本研究提出了一种通过将钴酞菁(CoPc)与钒酸铋(BVO)整合 一种直接溶剂热法来增强光电化学(PEC)水氧化的新方法。所制备的BVO@CoPc光阳极在1.23 V(相对于可逆氢电极,RHE)下表现出4.0 mA cm的光电流密度,约为未修饰BVO的3.1倍,并且具有优异的稳定性。BVO@CoPc光阳极的入射光子到电流转换效率(IPCE)达到了令人印象深刻的81%,同时电荷注入效率也有显著提高。这种优异的性能可归因于通过BVO/CoPc界面工程增强的亲水性,这促进了电极与电解质之间的界面相互作用,加速了光生电荷载流子的转移和分离。此外,与浸渍法和滴铸法相比,通过溶剂热法制备的BVO@CoPc-S复合光阳极在界面接触和表面亲水性方面有显著改善。这些发现突出了基于界面亲水性修饰的策略克服PEC水分解关键限制的潜力,为更高效、耐用的光阳极设计提供了一条途径。