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Efficient Water Splitting Cascade Photoanodes with Ligand‐Engineered MnO Cocatalysts

机译:配体工程MnO助催化剂的高效水分解级联光阳极

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摘要

The band edge positions of semiconductors determine functionality in solar water splitting. While ligand exchange is known to enable modification of the band structure, its crucial role in water splitting efficiency is not yet fully understood. Here, ligand‐engineered manganese oxide cocatalyst nanoparticles (MnO NPs) on bismuth vanadate (BiVO4) anodes are first demonstrated, and a remarkably enhanced photocurrent density of 6.25 mA cm−2 is achieved. It is close to 85% of the theoretical photocurrent density (≈7.5 mA cm−2) of BiVO4. Improved photoactivity is closely related to the substantial shifts in band edge energies that originate from both the induced dipole at the ligand/MnO interface and the intrinsic dipole of the ligand. Combined spectroscopic analysis and electrochemical study reveal the clear relationship between the surface modification and the band edge positions for water oxidation. The proposed concept has considerable potential to explore new, efficient solar water splitting systems.
机译:半导体的能带边缘位置决定了太阳能水分解的功能。尽管已知配体交换能够改变条带结构,但其在水分解效率中的关键作用尚未完全理解。在此,首次证明了在钒酸铋(BiVO4)阳极上进行配体设计的氧化锰助催化剂纳米颗粒(MnO NPs),并实现了6.25 mA cm -2 的显着提高的光电流密度。它接近BiVO4的理论光电流密度(≈7.5mA cm -2 )的85%。改善的光敏性与能带边能量的显着变化密切相关,该能带边能量的变化既来自配体/ MnO界面的诱导偶极子,又来自配体的本征偶极子。光谱分析和电化学研究相结合,揭示了表面修饰与水氧化带边缘位置之间的明确关系。所提出的概念具有探索新的高效太阳能分水系统的巨大潜力。

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