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表面等离子体激元对有机太阳能电池的影响。

Surface plasmonic effects on organic solar cells.

作者信息

Uddin Ashraf, Yang Xiaohan

出版信息

J Nanosci Nanotechnol. 2014 Feb;14(2):1099-119. doi: 10.1166/jnn.2014.9017.

DOI:10.1166/jnn.2014.9017
PMID:24749415
Abstract

Most high-performance organic photovoltaic (OPV) devices reported in the literature have been fabricated using the bulk heterojunction (BHJ) concept. Typically, the optimum thickness of the active layer for an OPV device is around 100 nm, or possibly less; such a thin layer can lead to low absorption of light. A thicker layer, however, inevitably increases the device resistance, due to the low carrier mobilities and short exciton diffusion lengths in organic materials. This situation imposes a trade-off between light absorption and charge transport efficiencies in OPV devices, motivating the development of a variety of light-trapping techniques. Metallic nanoparticles (NPs) such as Ag, Au, etc. and other metallic nanostructures are potential candidates for improving the light absorption due to the localized surface plasmon resonance (LSPR). LSPR contributes to the significant enhancement of local electromagnetic fields and improves the optical properties of the nanostructure devices. The excitation of LSPR is achieved when the frequency of the incident light matches its resonance peak, resulting in unique optical properties; selective light extinction as well as local enhancement of electromagnetic fields near the surface of metallic NPs. The resonance peak of LSPR depends strongly on the size, shape, and the dielectric environment of the metallic NPs. In this review article, progress on plasmonic enhanced OPV device performance is examined. The concepts of surface plasmonics for OPV devices, suitable plasmonic materials, location, optimum size and concentration of NP materials within the device are explored.

摘要

文献中报道的大多数高性能有机光伏(OPV)器件都是采用体异质结(BHJ)概念制造的。通常,OPV器件有源层的最佳厚度约为100纳米,或者可能更小;如此薄的一层会导致光吸收较低。然而,由于有机材料中载流子迁移率低和激子扩散长度短,较厚的层不可避免地会增加器件电阻。这种情况在OPV器件的光吸收和电荷传输效率之间形成了一种权衡,促使人们开发各种光捕获技术。诸如Ag、Au等金属纳米颗粒(NPs)以及其他金属纳米结构,由于局部表面等离子体共振(LSPR),是提高光吸收的潜在候选材料。LSPR有助于显著增强局部电磁场,并改善纳米结构器件的光学性能。当入射光的频率与其共振峰匹配时,就会激发LSPR,从而产生独特的光学特性;选择性光消光以及金属纳米颗粒表面附近电磁场的局部增强。LSPR的共振峰强烈依赖于金属纳米颗粒的尺寸、形状和介电环境。在这篇综述文章中,研究了等离子体增强OPV器件性能的进展。探讨了用于OPV器件的表面等离子体激元概念、合适的等离子体材料、器件内NP材料的位置、最佳尺寸和浓度。

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