4.8 Article

Near field control for enhanced photovoltaic performance and photostability in perovskite solar cells

期刊

NANO ENERGY
卷 89, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.nanoen.2021.106388

关键词

Metal-oxide; Nanostructured front contact; Perovskite solar cells; FDTD and FEM techniques; Photostability

资金

  1. Innovation and Technology Commission of Hong Kong [ITS/461/18]
  2. Hong Kong Research Grants Council (RGC), Hong Kong [CityU 11210218]
  3. Research Grants Council of Hong Kong, China [152093/18E]
  4. Universiti Kebangsaan Malaysia, Malaysia [DIP-2021-026]
  5. [20H02838]

向作者/读者索取更多资源

The study presents a photon management strategy for perovskite solar cells (PSCs) that is compatible with tandem and flexible PSCs. By rigorously validating through numerical modeling and analyzing the effects, the research aims to optimize device performance and enhance electrical characteristics for higher efficiency.
We present a strategy for photon management in front contact of perovskite solar cells (PSCs) compatible with tandem and flexible PSCs capable of optimizing device characteristics while providing an additional mechanism to overcome excessive focusing that affects the device's photostability. Rigorous validation of the numerical modeling used was performed by fabricating PSCs in a superstrate configuration optimized to reach high performance, ECE = 17.4%, V-OC = 1.02 V, J(SC) = 22.3 mA/cm(2), and FF = 77%. These 3D electromagnetic simulations combining the finite-difference time-domain (FDTD) and finite element method (FEM) techniques provide detailed insights of the photonic and electrical effects in PSCs. Numerical optimization of the dual capabilities of a novel nanostructured front contact enables control of the absorbed power density distribution to maximize efficiency while simultaneously minimizing nanostructure-related sub-wavelength focusing effects. In-depth analysis of the proposed photon management reveals enhanced electrical characteristics to maximize charge extraction leading to J(SC) enhancements of similar to 15 that can be as high as 33% for ultra-thin active layers suitable for flexible PSCs compared to planar PSCs performance. Furthermore, we show that the design of the front contact layer's nanostructure enables control of the power density distribution in the device to engineer PSCs' photostability without compromising performance enhancements afforded by the nanophotonic front contact. Details of the nanophotonic front contact, device, and fabrication process are provided.

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