钛酸铅作为水性太阳能光电阴极的材料信息学驱动设计和实验验证

Taylor Moot , Olexandr Isayev , Robert W. Call , Shannon M. McCullough , Morgan Zemaitis , Rene Lopez , James F. Cahoon , Alexander Tropsha
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引用次数: 25

摘要

材料信息学是一种快速出现的数据和知识驱动的方法,用于识别一系列应用的新型材料,包括太阳能转换。尽管进行了大量的实验工作,但开发高效、稳定和具有成本效益的光伏材料仍然是一个具有挑战性的科学问题。对精确定义的半导体特性的追求围绕着极其广泛的结构参数。在这里,我们通过应用材料信息学来设计一种用于染料敏化太阳能电池(DSSC)的新型光电阴极材料,解决了这一挑战。通过对50000种已知无机化合物进行虚拟筛选,我们确定钛酸铅(PbTiO3)是一种钙钛矿,是最有前途的光电阴极材料。值得注意的是,钛酸铅与用于光电阴极的传统基础元素或晶体结构显著不同。所制备的PbTiO3 DSSC器件在水溶液中表现出最佳性能,与典型的光电阴极系统相比,显示出显著高的填充因子。研究结果强调了材料信息学在简化具有所需性能的材料的实验开发方面可以发挥的关键作用。
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Material informatics driven design and experimental validation of lead titanate as an aqueous solar photocathode

Materials informatics is a rapidly emerging data- and knowledge-driven approach for the identification of novel materials for a range of applications, including solar energy conversion. Despite significant experimental effort, the development of highly efficient, stable, and cost-effective photovoltaic materials remains a challenging scientific problem. The quest for precisely defined semiconductor properties revolves around an immensely broad landscape of structural parameters. Here, we have resolved this challenge by applying material informatics to design a novel photocathode material for dye-sensitized solar cells (DSSCs). By conducting a virtual screening of 50,000 known inorganic compounds, we have identified lead titanate (PbTiO3), a perovskite, as the most promising photocathode material. Notably, lead titanate is significantly different from the traditional base elements or crystal structures used for photocathodes. The fabricated PbTiO3 DSSC devices exhibited the best performance in aqueous solution, showing remarkably high fill factors compared to typical photocathode systems. The results highlight the pivotal role materials informatics can play in streamlining the experimental development of materials with the desired properties.

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