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Plasmonic-perovskite solar cells, light emitters, and sensors

机译:等离子体钙钛矿太阳能电池、光发射器和传感器

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摘要

The field of plasmonics explores the interaction between light and metallic micro/nanostructures and films. The collective oscillation of free electrons on metallic surfaces enables subwavelength optical confinement and enhanced light-matter interactions. In optoelectronics, perovskite materials are particularly attractive due to their excellent absorption, emission, and carrier transport properties, which lead to the improved performance of solar cells, light-emitting diodes (LEDs), lasers, photodetectors, and sensors. When perovskite materials are coupled with plasmonic structures, the device performance significantly improves owing to strong near-field and far-field optical enhancements, as well as the plasmoelectric effect. Here, we review recent theoretical and experimental works on plasmonic perovskite solar cells, light emitters, and sensors. The underlying physical mechanisms, design routes, device performances, and optimization strategies are summarized. This review also lays out challenges and future directions for the plasmonic perovskite research field toward next-generation optoelectronic technologies.
机译:等离子体学领域探索光和金属微/纳米结构与薄膜之间的相互作用。自由电子在金属表面上的集体振荡使亚波长光学约束和增强的光-物质相互作用成为可能。在光电子学中,钙钛矿材料因其出色的吸收、发射和载流子传输特性而特别有吸引力,从而提高了太阳能电池、发光二极管 (LED)、激光器、光电探测器和传感器的性能。当钙钛矿材料与等离子体结构耦合时,由于强大的近场和远场光学增强以及等离子体电效应,器件性能显着提高。在这里,我们回顾了最近关于等离子体钙钛矿太阳能电池、光发射器和传感器的理论和实验工作。总结了底层物理机制、设计路线、器件性能和优化策略。本文还为等离子体钙钛矿研究领域向下一代光电技术的发展提出了挑战和未来方向。

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