研究评估抑制螺旋重组的技术方法

Fansong Chu
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摘要

人类对化石燃料的需求已经达到了一个非常高的水平。然而,化石能源存量有限,更重要的是,它们对环境的影响日益严重。开发清洁能源显得尤为重要。在所有清洁能源中,太阳能是替代化石燃料的一种非常有前途的重要能源。而太阳能光伏电池未能实现快速发展的主要原因之一就是奥杰复合材料的产生。为了给解决这一问题提供支持或方便研究人员的后续研究,本文通过阅读和对比大量相关权威文献,总结了界面工程和梯度合金化等几种解决多激子光伏电池奥杰复合问题的有效方法。上述两种方法通过在SnO2层界面上应用新型MXene(Nb2CTX-MXene)来激活界面缺陷,促进电荷传输,以及生成InAs/CdSe核/壳QDs,在InAs QDs上包覆晶格匹配的CdSe壳来抑制奥杰尔重组。对比大量文献发现,上述两种方法对提高光伏电池的效率具有指导作用。
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Research on the assessment of technical methods to suppress auger recombination
Human demand for fossil fuels has reached a very high level. However, fossil energy stocks are limited and, more importantly, their impact on the environment is increasing. The exploration of clean energy is particularly important. Among all the clean energy sources, solar energy is a very promising and important alternative to fossil fuels. And one of the primary reasons for the failure of solar photovoltaic cells to achieve rapid development is the generation of Auger composite. In order to provide support to solve this problem or facilitate the follow-up of researchers, this paper summarizes several effective methods such as Interfacial Engineering and Gradient Alloying to solve the Auger recombination problem in multi-exciton photovoltaic cells through reading and comparing a large number of relevant authoritative literature. The two methods mentioned above suppress Auger recombination by applying a new type of MXene (Nb2CTX-MXene) to the interface of SnO2 layers to pssivate the interfacial defects and promote charge transport and to generate InAs/CdSe core/shell QDs, overcoating InAs QDs with a lattice-matched CdSe shell. Comparing a large number of pieces of literature, it is found that the above two methods have guiding effects in improving the efficiency of photovoltaic cells.
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