Low-Bias Solar Water Oxidation on Photoanodes Composed of Oxygen-Vacancy-Rich BiVO 4 Nanopyramid Arrays Coated with Nanoscale Co–Fe-Layered Double Hydroxide Films
作者:Yilu Su, Zhiyuan Peng, En-Naji Imane, Peipei Liu, Amir Khojastehnezhad, J. Claverie, Mohamed Siaj · 发表于:ACS Applied Nano Materials · 年份:2025 · DOI:10.1021/acsanm.5c02332 · 被引用次数:15 · 研究领域:Advanced Photocatalysis Techniques、Electrocatalysts for Energy Conversion、Perovskite Materials and Applications
Despite the great potential of bismuth vanadate (BiVO 4 ) photoanode in photoelectrochemical (PEC) water splitting applications, the pressing bottleneck of its sluggish surface reaction kinetics and significant charge losses remains to be resolved. Further optimizing the intrinsic charge transport for the enhancement of the solar-to-hydrogen conversion has emerged as a critical priority. Herein, a nanoscale cobalt–iron layered double hydroxide (CoFe-LDH) film was conformally encapsulated on oxygen-vacancy-rich BiVO 4 (O V -BiVO 4 ) nanopyramid arrays, forming a distinctive highly ordered O V -BiVO 4 /CoFe-LDH core–shell photoanode. Experimental and computational studies revealed that the successful introduction of oxygen vacancies on the BiVO 4 lattice, via the electrochemical reduction process, remarkably increases the overall carrier density, electrical conductivity, and built-in photovoltage, devoted to the promotion of both bulk and surface charge separation. The synergistically integrated CoFe-LDH nanofilm as the cocatalyst and protective layer further strengthens interfacial hole extraction and surface wettability, thereby enhancing water oxidation kinetics and charge injection efficiency. As a result, the nanostructured O V -BiVO 4 /CoFe-LDH photoanode achieved a considerably improved photocurrent density of 2.33 mA/cm 2 at 1.23 V RHE, the relatively lower onset potential of 0.21 V RHE, a higher photon-to-electron conversion efficiency of 53.7%, and better photocorrosi...