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Two-dimensional gersiloxenes with tunable bandgap for photocatalytic H2 evolution and CO2 photoreduction to CO

机译:具有可调谐带隙的二维Gersiloxenes,用于光催化H2进化和CO2拍摄到CO

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The discovery of graphene and graphene-like two-dimensional materials has brought fresh vitality to the field of photocatalysis. Bandgap engineering has always been an effective way to make semiconductors more suitable for specific applications such as photocatalysis and optoelectronics. Achieving control over the bandgap helps to improve the light absorption capacity of the semiconductor materials, thereby improving the photocatalytic performance. This work reports two-dimensional -H/-OH terminal-substituted siligenes (gersiloxenes) with tunable bandgap. All gersiloxenes are direct-gap semiconductors and have wide range of light absorption and suitable band positions for light driven water reduction into H 2 ,?and CO 2 reduction to CO under mild conditions. The gersiloxene with the best performance can provide a maximum CO production of 6.91?mmol?g -1 ?h -1 , and a high apparent quantum efficiency (AQE) of 5.95% at 420?nm. This work may open up new insights into the discovery, research and application of new two-dimensional materials in photocatalysis.
机译:石墨烯和石墨烯的二维材料的发现为光催化的领域带来了新鲜的活力。带隙工程一直是一种有效的方法,使半导体更适合于特定应用,如光催化和光电子。在带隙上实现控制有助于提高半导体材料的光吸收能力,从而提高光催化性能。该作品将二维-H / -OH末端取代的硅片(Gersiloxenes)报告为可调谐带隙。所有gersiloxenes是直接带隙半导体和具有宽范围光吸收和合适的频带位置的光驱动的水还原成H 2,和CO 2还原成CO温和的条件下。具有最佳性能的Gersiloxene可以提供6.91摩尔?G -1?H -1的最大CO产生,以及420纳米的高表观量子效率(AQE)为5.95%。这项工作可能会在光催化分析中发现,研究和应用新的二维材料的发现,研究和应用。

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