High‐Entropy Lead‐Free Organic–Inorganic Hybrid Perovskites Exhibiting Broad Absorption and Bright Golden Emission for LEDs

X Xuan Liu (School of Energy and Power Engineering) Q Qianglong Fang (Key Laboratory of Quantum Materials and Devices of Ministry of Education, School of Physics) Z Zhibin Yang J Jiankang Zhou (College of Engineering and Applied Sciences, State Key Laboratory of Analytical Chemistry for Life Science, National Laboratory of Solid State Microstructures Nanjing University Nanjing Jiangsu 210023 P. R. China) Z Zhiyi Yan (College of Engineering and Applied Sciences, State Key Laboratory of Analytical Chemistry for Life Science, National Laboratory of Solid State Microstructures Nanjing University Nanjing Jiangsu 210023 P. R. China) S Shuming Nie M Ming‐Gang Ju (Key Laboratory of Quantum Materials and Devices of Ministry of Education, School of Physics Southeast University Nanjing 211189 P. R. China) J Jinlan Wang Z Zhengtao Deng (College of Engineering and Applied Sciences, State Key Laboratory of Analytical Chemistry for Life Science, National Laboratory of Solid State Microstructures Nanjing University Nanjing Jiangsu 210023 P. R. China)

Abstract

Abstract Metal halide perovskite nanomaterials are attractive for optoelectronic applications due to their exceptional optoelectronic properties; however, lead toxicity and stability issues significantly limit their practical use. High‐entropy materials (HEMs) leverage multi‐principal component synergy to form configurational entropy‐stabilized solid solutions, exhibiting unique physicochemical properties and superior stability arising from atomic‐scale chemical disorder and reconstructed local electronic states. Nevertheless, their luminescence efficiency often requires improvement. Here, we report the room‐temperature synthesis of a novel organic–inorganic hybrid high‐entropy perovskite, (TEA) 2 (Zr 0.18 Te 0.22 Hf 0.2 Sn 0.3 Pt 0.1 )Cl 6 (TEA = tetraethylammonium). Exploiting the synergistic effects among five diverse B‐site cations, this material exhibits broad‐spectrum–excitable broadband emission, producing a distinct golden light. The study demonstrates that this material retains 80% of its initial photoluminescence intensity after 1 h of continuous ultraviolet irradiation and maintains 60% of its original emission intensity even when heated to 340 K. Furthermore, its facile room‐temperature synthesis facilitates promising applications, such as in light‐emitting diodes and x‐ray detection. These findings provide crucial insights for advancing the development of efficient and stable novel optoelectronic materials.

Article Details

Volume / Issue Vol. 65, Issue 2
Published January 09, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

X

Xuan Liu

School of Energy and Power Engineering

Q

Qianglong Fang

Key Laboratory of Quantum Materials and Devices of Ministry of Education, School of Physics

Z

Zhibin Yang

J

Jiankang Zhou

College of Engineering and Applied Sciences, State Key Laboratory of Analytical Chemistry for Life Science, National Laboratory of Solid State Microstructures Nanjing University Nanjing Jiangsu 210023 P. R. China

Z

Zhiyi Yan

College of Engineering and Applied Sciences, State Key Laboratory of Analytical Chemistry for Life Science, National Laboratory of Solid State Microstructures Nanjing University Nanjing Jiangsu 210023 P. R. China

S

Shuming Nie

M

Ming‐Gang Ju

Key Laboratory of Quantum Materials and Devices of Ministry of Education, School of Physics Southeast University Nanjing 211189 P. R. China

J

Jinlan Wang

Z

Zhengtao Deng

College of Engineering and Applied Sciences, State Key Laboratory of Analytical Chemistry for Life Science, National Laboratory of Solid State Microstructures Nanjing University Nanjing Jiangsu 210023 P. R. China