Boosting photoluminescence efficiency in Yb3+-doped CsPbCl3 Nanocrystals via metal chloride post-treatment for high-performance luminescent solar concentrators
Abstract
Yb3+-doped perovskite nanocrystals (NCs) featuring quantum-cutting capability exhibit enormous potential for luminescent solar concentrators (LSCs) due to their theoretically achievable 200% photoluminescence quantum yield (PLQY). However, their practical applications are still limited by defect-assisted nonradiative recombination, insufficient exciton to Yb3+ energy transfer efficiency, and poor operational stability. Herein, we demonstrate a CdCl2 post-treatment strategy to regulate the lattice structure and PL dynamics of Yb3+:CsPbCl3 NCs. As a result, the PLQY is significantly enhanced from 125.3% to 177.4%, accompanied by an increase in exciton to Yb3+ energy transfer efficiency from 75.9% to 86.4%. In addition, the treated NCs exhibit substantially improved photostability and thermal stability, with the thermal activation energy increasing from 61.8 ± 6.2 to 90.9 ± 2.4 meV. Compared with ZnCl2, NiCl2, and CuCl2 treatments, CdCl2 shows uniquely superior enhancement of the exciton to Yb3+ energy transfer efficiency and Yb3+ emission. Flexible LSCs fabricated based on the treated NCs exhibit high visible transparency and efficient near-infrared (NIR) photon waveguiding and concentrating capability, achieving an internal optical efficiency exceeding 120% and delivering enhanced photovoltaic performance when coupled with silicon solar cells. This work provides an effective strategy for developing high-performance Yb3+-doped perovskite NCs and flexible transparent LSCs for building-integrated photovoltaics.
Keywords
Perovskite nanocrystals, photoluminescence, energy transfer, post-treatment, luminescent solar concentrators.
Cite This Article
Yan T, Liu Z, Zhang S, Song L, Ji S, Xing K, Zhao J, Yuan X. Boosting photoluminescence efficiency in Yb3+-doped CsPbCl3 Nanocrystals via metal chloride post-treatment for high-performance luminescent solar concentrators. Energy Mater 2026;6:[Accept]. http://dx.doi.org/10.20517/energymater.2026.143
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