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Wave optics light-trapping theory: mathematical justification and ultimate limit on enhancement

机译:波光光学光捕捉理论:数学理由和增强极限

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This paper addresses a number of important and underlying theoretical and practical questions regarding the recently developed wave optics light-trapping theory for solar cells. We provide a rigorous and complete justification of its mathematical validity, using the second law of thermodynamics as well as fundamental properties of resonant scattering as described by the temporal coupled-mode theory. For maximal absorption, all optical modes supported by a solar cell structure must couple and only couple to the incident channel of sunlight radiation. For the first time to the best of our knowledge, we derive the ultimate limit of light trapping, which depends positively on the number of optical modes and hence on the periodicity of the structure. The ultimate limit is reached when every mode in the structure can couple only to the incident channel. Furthermore, we predict the theoretical optimal operating regimes of nanophotonic solar cells under practical scenarios. Our work reveals significant gaps between state-of-the-art nanophotonic solar cell designs and the ultimate limit, pointing to important future opportunities for nanophotonic light management for efficiency enhancement and cost reduction of solar cells. (C) 2019 Optical Society of America
机译:本文涉及关于最近开发的太阳能电池的最近发达的波光光捕获理论的一些重要和基础的理论和实践问题。我们利用第二热力学定律提供了对其数学有效性的严谨性和完全理解,以及时间耦合模式理论所述的共振散射的基本特性。对于最大吸收,太阳能电池结构支撑的所有光学模式必须耦合,并且仅耦合到阳光辐射的入射道。我们首次达到我们的知识,我们推导了光捕获的最终极限,这取决于光学模式的数量,因此取决于结构的周期性。当结构中的每种模式都只能耦合到入射道时,达到最终限制。此外,我们在实际情况下预测了纳米光电太阳能电池的理论最优操作制度。我们的工作揭示了最先进的纳米光电太阳能电池设计与最终极限之间的显着差距,指出了纳米光电管理的重要机会,以实现太阳能电池的效率提高和成本降低。 (c)2019年光学学会

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