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首页> 外文期刊>The Journal of Chemical Physics >Unified theory of plasmon-induced resonance energy transfer and hot electron injection processes for enhanced photocurrent efficiency
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Unified theory of plasmon-induced resonance energy transfer and hot electron injection processes for enhanced photocurrent efficiency

机译:统一的等离子体诱导的共振能量转移和热电子注入工艺理论,提高光电流效率

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摘要

Plasmons in metal nanoparticles (MNPs) promise to enhance solar energy conversion in semi-conductors. Two essential mechanisms of enhancement in the near-field regime are hot electron injection (HEI) and plasmon-induced resonance energy transfer (PIRET). Individual studies of both mechanisms indicate that the PIRET efficiency is limited by the short lifetime of the plasmon, whereas the hot electrons result from the plasmon decay. The development of a unified theory of the coupled HEI and PIRET processes is fundamentally interesting and necessary for making reliable predictions but is complicated by the multiple interactions between various components that participate in the enhancement process. In this paper, we use the model-Hamiltonian approach to develop a combined theoretical framework including both PIRET and HEI. The coupled dynamics as well as the time evolution of hot electron energy distribution are studied. The theory further predicts an interference-induced asymmetry in the spectral dependence of PIRET, which can be used to distinguish it from HEI. As the relative contributions of PIRET and HEI strongly depend on the size of the MNPs, this presents itself as a simple route to control the strength of their contributions. The results presented here can further guide future applications of plasmonic solar energy harvesting.
机译:金属纳米颗粒(MNP)中的等离子体承诺提高半导体中的太阳能转换。近场制度增强的两个基本机制是热电子注射(Hei)和等离子体诱导的共振能量转移(PiRet)。两种机制的个别研究表明,PiRet效率受到等离子体短寿命的限制,而热电子由等离子体衰减产生。耦合Hei和PiRet流程的统一理论的发展是基本上有趣,使得可靠的预测是必要的,但是通过参与增强过程的各种组件之间的多种相互作用是复杂的。在本文中,我们使用模型-hamiltonian方法来开发一个组合的理论框架,包括Pire和Hei。研究了耦合动力学以及热电子能量分布的时间演化。该理论进一步预测了Pire的光谱依赖性的干扰诱导的不对称性,其可用于将其与Hei区分开来。随着Pire和Hei的相对贡献强烈取决于MNP的大小,这将成为控制其贡献强度的简单路线。此处提供的结果可以进一步引导等离子体太阳能收割的未来应用。

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