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通过立体工程调整卤化物钙钛矿的可调谐光学带隙。

Steric engineering of metal-halide perovskites with tunable optical band gaps.

机构信息

Department of Materials, University of Oxford, Parks Road, Oxford OX1 3PH, UK.

Department of Physics, University of Oxford, Clarendon Laboratory, Parks Road, Oxford OX1 3PU, UK.

出版信息

Nat Commun. 2014 Dec 15;5:5757. doi: 10.1038/ncomms6757.

Abstract

Owing to their high energy-conversion efficiency and inexpensive fabrication routes, solar cells based on metal-organic halide perovskites have rapidly gained prominence as a disruptive technology. An attractive feature of perovskite absorbers is the possibility of tailoring their properties by changing the elemental composition through the chemical precursors. In this context, rational in silico design represents a powerful tool for mapping the vast materials landscape and accelerating discovery. Here we show that the optical band gap of metal-halide perovskites, a key design parameter for solar cells, strongly correlates with a simple structural feature, the largest metal-halide-metal bond angle. Using this descriptor we suggest continuous tunability of the optical gap from the mid-infrared to the visible. Precise band gap engineering is achieved by controlling the bond angles through the steric size of the molecular cation. On the basis of these design principles we predict novel low-gap perovskites for optimum photovoltaic efficiency, and we demonstrate the concept of band gap modulation by synthesising and characterising novel mixed-cation perovskites.

摘要

由于其高效的能量转换效率和低廉的制造工艺,基于金属有机卤化物钙钛矿的太阳能电池作为一种颠覆性技术迅速崭露头角。钙钛矿吸收剂的一个吸引人的特点是通过改变化学前体的元素组成来调整其性能。在这种情况下,合理的计算机辅助设计代表了一种强大的工具,可以绘制广阔的材料景观并加速发现。在这里,我们表明,对于太阳能电池来说是一个关键设计参数的金属卤化物钙钛矿的光学带隙与一个简单的结构特征,即最大的金属卤化物-金属键角强烈相关。使用这个描述符,我们建议从中红外到可见光的光学间隙的连续可调谐性。通过分子阳离子的空间位阻大小来控制键角,可以实现精确的能带隙工程。基于这些设计原则,我们预测了新型低带隙钙钛矿以实现最佳光伏效率,并且通过合成和表征新型混合阳离子钙钛矿来证明了能带隙调制的概念。

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