Water-splitting for renewable hydrogen energy sources: a molecular level approach
Water-splitting for renewable hydrogen energy sources: a molecular level approach
批准号:
2888859
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2023
资助国家:
英国
项目状态:
未结题
起止时间:
2023 至 --
中文摘要
1分解水的光催化装置将光收集、光生电荷分离和催化集成到一个装置中,因此为实现这一最终目标提供了一条非常有希望的途径。然而,关键的不确定性仍然存在于设备功能背后的动力学以及这些动力学如何依赖于材料和设备设计。例如,关于外加电压或光激发究竟如何在动力学上具有挑战性的多步骤反应中驱动催化,如水的分裂,存在着重大的争议。2,3解决这些问题构成了该项目背后的主要研究问题。在本项目中,您将重点介绍一系列用于可持续燃料合成的无机催化剂。在ICL,您将使用时间和电位分辨的UV-Vis和近红外光谱电化学来确定催化剂和光吸收剂中载流子的光谱指纹,以及在操作条件下测量的它们的种群和反应动力学。这一信息将得到伦敦大学学院的操纵道共振拉曼光谱的补充,这将给出对这些带电物种的局部结构和构象的直接化学洞察。这些结构和动力学分析的结合将使分子设计原则得以确立,从而使人们能够更深入地了解决定光催化材料和器件性能的因素。反过来,这将进一步推动一项关键的低碳技术的发展。
英文摘要
Developing renewable routes to hydrogen, a sustainable fuel, is critical to achieving net-zero emissions.1 Photocatalytic devices for water-splitting integrate light harvesting, photogenerated charge separation, and catalysis into a single device and so offer a highly promising route to this end goal. However, key uncertainties remain over the kinetics underlying device function and how these kinetics depend upon materials and device design. There is, for example, significant controversy over exactly how an applied voltage or photoexcitation drives catalysis in kinetically challenging, multi-step reactions such as water splitting.2,3 Addressing these questions forms the main research question behind this project. In this project you will focus on a range of inorganic catalysts for sustainable fuel synthesis. At ICL you will use time and potential resolved UV-Vis and NIR spectroelectrochemistry to determine the spectral fingerprint of charge carriers in catalysts and photabsorbers, as well as their populations and reaction kinetics, measured under operating conditions. This information will be complemented by operando resonance Raman spectroscopy at UCL, which will give direct chemical insight into the local structure and conformation of these charged species. The combination of these structural and kinetic analyses will enable molecular design principles to be established, allowing greater insight into the factors that determine photocatalytic material and device performance. In turn, this will further the development of a crucial low carbon technology.
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会议论文
国内基金
海外基金
深埋地下工程围岩劈裂破坏的能量耗散和形成机理研究
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批准号:50579033
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项目类别:面上项目
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资助金额:27.0万元
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批准年份:2005
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负责人:朱维申
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依托单位: