Charge carrier dynamics in semiconductor–cocatalyst interfaces: influence on photocatalytic activities

Dipendu Sarkar, Jishu Pramanik, Soumita Samajdar, Maitrayee Biswas and Srabanti Ghosh
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Abstract

Electron transfer dynamics at semiconductor–cocatalyst interfaces are critical for efficient solar fuel generation, including water splitting, pollutant degradation, CO2 reduction, and N2 fixation. These interfaces facilitate charge separation, suppress recombination, and enable photoexcited charge carriers to transfer to active sites for photocatalytic reactions. The formation of Schottky or ohmic junctions, energy band alignment, and surface properties significantly influence charge transfer efficiency. Advances in theoretical modeling, such as density functional theory (DFT) and several experimental techniques like ultrafast spectroscopy and in situ X-ray photoelectron spectroscopy, have offered profound insights into these processes. Understanding and optimizing these dynamics is essential for developing high-performance photocatalytic systems to harness solar energy and address global energy demands sustainably. This review offers a concise explanation of charge transfer mechanisms at semiconductor–cocatalyst interfaces, explored through various experimental methodologies and theoretical frameworks. Exploring the underlying mechanism will open new avenues for advancing high-performance semiconductor photocatalytic technologies. The conclusion sheds light on the challenges and promising opportunities for enhancing the understanding and investigation of interfacial electron transfer dynamics in semiconductor–cocatalyst systems.

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半导体-助催化剂界面中的载流子动力学:对光催化活性的影响
半导体-助催化剂界面上的电子传递动力学对于高效的太阳能燃料生成至关重要,包括水分解、污染物降解、二氧化碳还原和N2固定。这些界面促进电荷分离,抑制重组,并使光激发的载流子转移到光催化反应的活性位点。肖特基结或欧姆结的形成、能带排列和表面性质显著影响电荷转移效率。理论建模的进步,如密度泛函理论(DFT)和一些实验技术,如超快光谱和原位x射线光电子能谱,为这些过程提供了深刻的见解。了解和优化这些动态对于开发高性能光催化系统以利用太阳能和可持续地解决全球能源需求至关重要。本文通过各种实验方法和理论框架对半导体-助催化剂界面上的电荷转移机制进行了简要的解释。探索其潜在机制将为推进高性能半导体光催化技术开辟新的途径。该结论揭示了加强对半导体-助催化剂体系界面电子转移动力学的理解和研究的挑战和前景。
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