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Fundamental Insights into Photoelectrocatalytic Hydrogen Production with a Hole-Transport Bismuth Metal-Organic Framework

机译:具有空穴传输铋金属有机骨架的光电催化产氢的基本原理

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Solar fuels production is a cornerstone in the development of emerging sustainable energy conversion and storage technologies. Light-induced H_2 production from water represents one of the most crucial challenges to produce renewable fuel. Metal—organic frameworks (MOFs) are being investigated in this process, due to the ability to assemble new structures with the use of suitable photoactive building blocks. However, the identification of the reaction intermediates remains elusive, having negative impacts in the design of more efficient materials. Here, we report the synthesis and characterization of a new MOF prepared with the use of bismuth and dithieno[3,2-b:2',3'-d]thiophene-2,6-dicarboxylic acid (DTTDC), an electron-rich linker with hole transport ability. By combining theoretical studies and time-resolved spectroscopies, such as core hole clock and laser flash photolysis measurements, we have completed a comprehensive study at different time scales (fs to ms) to determine the effect of competitive reactions on the overall H_2 production. We detect the formation of an intermediate radical anion upon reaction of photogenerated holes with an electron donor, which plays a key role in the photoelectrocatalytic processes. These results shed new light on the use of MOFs for solar fuel production.
机译:太阳能燃料生产是新兴的可持续能源转换和存储技术发展的基石。由水产生的光诱导的H_2产生是生产可再生燃料的最关键挑战之一。由于能够使用合适的光敏建筑材料组装新结构,因此正在研究金属有机框架(MOF)。然而,对反应中间体的鉴定仍然难以捉摸,对更有效材料的设计具有负面影响。在这里,我们报告了使用铋和二噻吩并[3,2-b:2',3'-d]噻吩-2,6-二羧酸(DTTDC)制备的新型MOF的合成和表征。具有空穴传输能力的丰富连接子。通过将理论研究与时间分辨光谱学(例如孔眼时钟和激光闪光光解测量)相结合,我们已经完成了在不同时间范围(fs至ms)的全面研究,以确定竞争反应对总体H_2产生的影响。我们检测到光生空穴与电子供体反应后形成中间自由基阴离子,这在光电催化过程中起关键作用。这些结果为将MOF用于太阳能生产提供了新的思路。

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