MMM
YYYY
Modelling-guided inverse design strategy for semitransparent perovskite photovoltaics with customized colors
基于建模引导的半透明钙钛矿光伏器件定制颜色逆向设计策略
カスタムカラーの半透明ペロブスカイト光起電力デバイスのモデリングガイド逆設計戦略
모델링 지도 반전 설계 전략을 통한 맞춤형 색상의 반투명 페로브스카이트 태양전지
Estrategia de diseño inverso guiada por modelado para fotovoltaicos de perovskita semitransparentes con colores personalizados
Stratégie de conception inverse guidée par la modélisation pour les photovoltaïques pérovskites semi-transparentes avec des couleurs personnalisées
Моделирование-ориентированная стратегия обратного проектирования для полупрозрачных перовскитных фотоэлементов с индивидуальными цветами
Seok-Beom Seo ¹, Rira Kang ², Eun-Joo Lee ¹, So-Yeon Ju ², Min Jae Lee ², Byunghong Lee ², Sun-Kyung Kim ¹
¹ Department of Applied Physics, Kyung Hee University, Yongin-si, Gyeonggi-do 17104, Republic of Korea
² Energy Devices Research Team, Hyundai Motor Group, Uiwang-si, Gyeonggi-do 16082, Republic of Korea
Opto-Electronic Advances, 12 February 2026
Abstract

Urban architects increasingly seek solar windows that deliver both energy generation and aesthetic value. However, existing color-engineering strategies rely on absorptive metal layers or lack control over the achievable colors. Here, we present a modelling-guided inverse design strategy that integrates an all-dielectric (ZnS/MgF2) multilayer into semitransparent perovskite photovoltaics, enabling user-defined colors with minimal spectral loss.

Leveraging an active learning algorithm, we mapped the attainable color gamut for ZnS/MgF2-coated devices with distinct perovskite absorber thicknesses and average visible transmittance (AVT) values. As a representative case, a device with a 110 nm-thick absorber on glass or polyethylene terephthalate (PET), initially exhibiting a reddish-brown tint, was transformed into vivid cyan using a 600 nm-thick all-dielectric multilayer.

This tuning retained high AVT—6.5% on glass and 5.3% on PET—while enhancing power conversion efficiency by 20.9% and 10.4%, respectively. Real-world imaging confirmed enhanced aesthetics with see-through visibility, underscoring the practical potential of the inverse-design framework. Moreover, this approach is readily transferable to other thin film photovoltaics, providing a versatile route toward color customizable, transmittance-tunable, and high-efficiency solar windows for buildings, vehicles, and wearable electronics.
Opto-Electronic Advances_1
Opto-Electronic Advances_2
Opto-Electronic Advances_3
Opto-Electronic Advances_4
Reviews and Discussions
https://www.hotpaper.io/index.html
Physics-informed neural fields enable blind aberration correction for partially coherent quantitative phase imaging
Programmable directional photonic spiking neuron based on a non-Hermitian silicon microresonator
Mutual empowerment of artificial intelligence and metasurfaces: intelligent nanophotonics and optical intelligence
Scalable spatiotemporal interleaving network for high-density integrated photonic convolution
From non-resonant to resonant meta-devices: imaging, color routing, displaying, and beyond
Instantaneous UAV tracking using single-photon LiDAR via photon-event-driven suppression of temporal-averaging bias
Biological testing with terahertz focal-plane imaging based on a slot metamaterial sensor
Scattering media as random micro-phase-pinhole arrays for incoherent information transmission
Entropy-loaded digital subcarrier multiplexing transmission adaptive to the loss-spectrum ripples of hollow-core fiber
Integrated optical transceivers: architectures, key technologies, and applications
Interface and integration challenges in 0D/2D hybrid photodetection: optimizing assembly, interface and charge transfer
AI-enabled electromagnetic metasurfaces for wireless communication and invisibility cloak



Previous Article                                Next Article
About
|
Contact
|
Copyright © Hot Paper