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首页> 外文期刊>Journal of physical chemistry letters >Novel Excitonic Solar Cells in Phosphorene-TiO2 Heterostructures with Extraordinary Charge Separation Efficiency
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Novel Excitonic Solar Cells in Phosphorene-TiO2 Heterostructures with Extraordinary Charge Separation Efficiency

机译:磷-TiO2异质结构中的新型激子太阳能电池,具有出色的电荷分离效率

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摘要

Constructing van der Waals heterostructures is an efficient approach to modulate the electronic structure, to advance the charge separation efficiency, and thus to optimize the optoelectronic property. Here, we theoretically investigated the phosphorene interfaced with TiO2(110) surface (1L-BP/TiO2) with a type-II band alignment, showing enhanced photoactivity. The 1L-BP/TiO2 excitonic solar cell (XSC) based on the 1L-BP/TiO2 exhibits large built-in potential and high power conversion efficiency (PCE), dozens of times higher than conventional solar cells, comparable to MoS2/WS2 XSC. The nonadiabatic molecular dynamics simulation shows the ultrafast electron transfer time of 6.1 fs, and slow electron-hole recombination of 0.58 ps, yielding >98% internal quantum efficiency for charge separation, further guaranteeing the practical PCE. Moreover, doping in phosphorene has a tunability on built-in potential, charge transfer, light absorbance, as well as electron dynamics, which greatly helps to optimize the optoelectronic efficiency of a XSC.
机译:构造范德华异质结构是一种有效的方法,可以调节电子结构,提高电荷分离效率,从而优化光电性能。在这里,我们从理论上研究了与TiO2(110)表面(1L-BP / TiO2)接触的具有II型能带取向的phosphor,显示出增强的光活性。基于1L-BP / TiO2的1L-BP / TiO2激子太阳能电池(XSC)具有巨大的内置电势和高功率转换效率(PCE),是传统太阳能电池的数十倍,可与MoS2 / WS2 XSC媲美。非绝热分子动力学模拟显示超快的电子转移时间为6.1 fs,慢速的电子-空穴复合为0.58 ps,产生大于98%的内部量子效率用于电荷分离,进一步保证了实用的PCE。此外,磷光体的掺杂在内置电势,电荷转移,光吸收和电子动力学方面具有可调性,这极大地有助于优化XSC的光电效率。

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