Efficient and environmental-friendly perovskite solar cells via embedding plasmonic nanoparticles: an optical simulation study on realistic device architectures

钙钛矿(结构) 材料科学 光电流 等离子体子 光电子学 能量转换效率 纳米颗粒 等离子太阳电池 等离子纳米粒子 纳米技术 聚合物太阳能电池 化学工程 工程类
作者
George Perrakis,George Kakavelakis,George Kenanakis,Constantinos Petridis,Emmanuel Stratakis,Maria Kafesaki,Emmanuel Kymakis
出处
期刊:Optics Express [Optica Publishing Group]
卷期号:27 (22): 31144-31144 被引量:26
标识
DOI:10.1364/oe.27.031144
摘要

Solution-processed, lead halide-based perovskite solar cells have overcome important challenges over the recent years, offering low-cost and high solar power conversion efficiencies.However, they still undergo unoptimized light collection due mainly to the thin (~350 nm) polycrystalline absorber layers.Moreover, their high toxicity (due to the presence of lead in the perovskite crystalline structure) makes it necessary that the thickness of the absorber layers to be further reduced, for their future commercialization, without reducing the device performance.Here we aim to address these issues via embedding spherical plasmonic nanoparticles of various sizes, composition, concentrations, and vertical positions, for the first time in realistic halide-based perovskite solar cells architecture, and to clarify their effect on the absorption properties and enhancement.We theoretically show that plasmon-enhanced near-field effects and scattering leads to a device photocurrent enhancement of up to ~7.3% when silver spheres are embedded inside the perovskite layer.Interestingly, the combination of silver spheres in perovskite and aluminum spheres inside the hole transporting layer (PEDOT:PSS) of the solar cell leads to an even further enhancement, of up to ~12%.This approach allows the employment of much thinner perovskite layers in PSCs (up to 150 nm) to reach the same photocurrent as the nanoparticles-free device and reducing thus significantly the toxicity of the device.Providing the requirements related to the size, shape, position, composition, and concentration of nanoparticles for the PSCs photocurrent enhancement, our study establishes guidelines for a future development of highly-efficient, environmentally friendly and low-cost plasmonic perovskite solar cells.
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