<p>BiVO<sub>4</sub>, with its moderate band gap (∼2.4 eV) and visible light absorption properties, is considered a promising photoanode material. However, its photoelectrochemical performance is hindered by intrinsic defects such as poor charge carrier transport and rapid electron-hole recombination, resulting in a significant gap between its practical and theoretical photocurrent densities. In this work, we present a simple surface reconstruction method by adding citric acid to Na<sub>2</sub>SO<sub>4</sub> electrolyte. Citric acid’s multidentate structure strongly chelates the metal-sites on the BiVO<sub>4</sub> surface, triggering lattice reconstruction through intense interactions. This surface modification not only prolongs hole lifetime but also acts as an interface modifier, leaving a carboxyl-rich, superhydrophilic interface on the BiVO<sub>4</sub> surface after the reaction (contact angle ≈ 0°). The multi-dimensional optimization synergistically improves BiVO<sub>4</sub>’s photoelectrochemical performance, achieving an excellent photocurrent density of 6.8 mA·cm<sup>−2</sup> under AM 1.5G irradiation. Importantly, our findings reveal a three-pronged synergy achieved with inexpensive citric acid: structural reconfiguration, electronic tuning, and extreme wettability, which offered a streamlined route for solar fuel production without solid co-catalysts.</p>

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Citric acid-driven interface engineering of BiVO4 photoanodes for enhanced photoelectrochemical performance

  • Xingsheng Hu,
  • Bing-Hao Wang,
  • Xiong Wang,
  • Chao Peng,
  • Sheng Tian,
  • Huijuan Wang,
  • Mingming Yin,
  • Yang Li,
  • Yuyun Liu,
  • Yutong Dai,
  • Weifan Shao,
  • Lang Chen,
  • Shuang-Feng Yin

摘要

BiVO4, with its moderate band gap (∼2.4 eV) and visible light absorption properties, is considered a promising photoanode material. However, its photoelectrochemical performance is hindered by intrinsic defects such as poor charge carrier transport and rapid electron-hole recombination, resulting in a significant gap between its practical and theoretical photocurrent densities. In this work, we present a simple surface reconstruction method by adding citric acid to Na2SO4 electrolyte. Citric acid’s multidentate structure strongly chelates the metal-sites on the BiVO4 surface, triggering lattice reconstruction through intense interactions. This surface modification not only prolongs hole lifetime but also acts as an interface modifier, leaving a carboxyl-rich, superhydrophilic interface on the BiVO4 surface after the reaction (contact angle ≈ 0°). The multi-dimensional optimization synergistically improves BiVO4’s photoelectrochemical performance, achieving an excellent photocurrent density of 6.8 mA·cm−2 under AM 1.5G irradiation. Importantly, our findings reveal a three-pronged synergy achieved with inexpensive citric acid: structural reconfiguration, electronic tuning, and extreme wettability, which offered a streamlined route for solar fuel production without solid co-catalysts.