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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Fundamental physics behind high-efficiency organo-metal halide perovskite solar cells
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Fundamental physics behind high-efficiency organo-metal halide perovskite solar cells

机译:高效有机金属卤化物钙钛矿太阳能电池背后的基本物理学

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摘要

Organo-metal halide perovskite solar cells have shown remarkable progress in power conversion efficiencies in the past five years due to some amazing intrinsic properties such as long-range ambipolar transport characteristics, high dielectric constants, low exciton binding energies, and intrinsic ferroelectric polarizations. This review article discusses recent results with the focus on fundamental physics involved in internal photovoltaic processes in perovskite solar cells. The discussion includes charge transport, photoexcited carriers versus excitons, exciton binding energies, ferroelectric properties, and magnetic field effects. The objective of this review article is to provide the critical understanding for materials synthesis and device engineering to further advance photovoltaic actions in the state-of-the-art organo-metal halide perovskite solar cells.
机译:在过去的五年中,有机金属卤化物钙钛矿太阳能电池在功率转换效率方面取得了显着进步,这归因于一些令人惊奇的固有特性,例如长距离双极传输特性,高介电常数,低激子结合能和固有铁电极化。这篇评论文章讨论了最近的结果,重点是钙钛矿太阳能电池内部光伏过程中涉及的基本物理学。讨论内容包括电荷传输,光激发载流子与激子,激子结合能,铁电特性和磁场效应。这篇综述文章的目的是提供对材料合成和器件工程学的批判性理解,以进一步推进先进的有机金属卤化物钙钛矿太阳能电池中的光伏作用。

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