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Interfacial engineering of metal-insulator-semiconductor junctions for efficient and stable photoelectrochemical water oxidation

机译:金属-绝缘体-半导体结的界面工程可实现有效而稳定的光电化学水氧化

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摘要

Solar-assisted water splitting can potentially provide an efficient route for large-scale renewable energy conversion and storage. It is essential for such a system to provide a sufficiently high photocurrent and photovoltage to drive the water oxidation reaction. Here we demonstrate a photoanode that is capable of achieving a high photovoltage by engineering the interfacial energetics of metal–insulator–semiconductor junctions. We evaluate the importance of using two metals to decouple the functionalities for a Schottky contact and a highly efficient catalyst. We also illustrate the improvement of the photovoltage upon incidental oxidation of the metallic surface layer in KOH solution. Additionally, we analyse the role of the thin insulating layer to the pinning and depinning of Fermi level that is responsible to the resulting photovoltage. Finally, we report the advantage of using dual metal overlayers as a simple protection route for highly efficient metal–insulator–semiconductor photoanodes by showing over 200 h of operational stability.
机译:太阳能辅助的水分解可以为大规模的可再生能源转化和存储提供一条有效的途径。对于这样的系统,至关重要的是提供足够高的光电流和光电压来驱动水氧化反应。在这里,我们演示了一个光阳极,该光阳极能够通过设计金属-绝缘体-半导体结的界面能来实现高光电压。我们评估了使用两种金属来使肖特基接触和高效催化剂的功能脱钩的重要性。我们还说明了在KOH溶液中金属表面层偶然氧化后光电压的提高。此外,我们分析了薄绝缘层对费米能级的钉扎和钉扎的作用,费米能级对产生的光电压负责。最后,通过显示超过200 h的操作稳定性,我们报告了使用双金属覆盖层作为高效金属-绝缘体-半导体光电阳极的简单保护途径的优势。

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