Broad Optical Absorption and Photochromism in a Metal‐Tripyridinium Cage Glass via Acid Perturbation for Efficient Photothermo‐Electric Synergistic Conversion

K Kang‐Jing Li (Key Laboratory of Magnetic Molecules and Magnetic Information Materials of the Ministry of Education School of Chemistry and Chemical Engineering Shanxi Normal University Taiyuan P.R. China) N Nan Zhang R Ruo‐Tong Li (Key Laboratory of Magnetic Molecules and Magnetic Information Materials of the Ministry of Education School of Chemistry and Chemical Engineering Shanxi Normal University Taiyuan P.R. China) D Dongpeng Yan S Shi‐Li Li (Key Laboratory of Magnetic Molecules and Magnetic Information Materials of the Ministry of Education School of Chemistry and Chemical Engineering Shanxi Normal University Taiyuan P.R. China) X Xian‐Ming Zhang (Key Laboratory of Magnetic Molecules and Magnetic Information Materials of the Ministry of Education School of Chemistry and Chemical Engineering Shanxi Normal University Taiyuan P.R. China)

Abstract

ABSTRACT Solar‐thermoelectric generation (STEG) offers a promising route to meet growing energy demands, but its practical application is constrained by the narrow photoresponse and low efficiency of conventional photothermal materials. Here, we report an ultrastable metal‐tripyridinium cage photochromic glass ( 1g ) with outstanding photothermal performance, synthesized through an acid perturbation strategy. A π‐extended tripyridinium‐based tricarboxylic acid ligand was designed, integrating a rigid pyridine‐centered aromatic scaffold for cage assembly with flexible N‐CH 2 ‐aryl linkers to facilitate glass formation. Pair distribution function analyses reveal that the resulting coordination cage glass stabilizes radical states and optimizes charge transfer, enabling broad optical absorption beyond 2000 nm. Consequently, 1g achieves a photothermal conversion efficiency of 93.1 ± 1.2% under 1060 nm laser irradiation at 0.6 W cm − 2 , with a stable surface temperature of 97.8 °C. Excited‐state dynamics calculations and femtosecond transient absorption spectra show that disorder‐induced LLCT‐to‐MLCT transitions, reduced energy gaps, enhanced reorganization energy, and suppressed radiative decay underlie its exceptional performance. Integrated with thermoelectric modules, the system generates a 50.6°C temperature difference and 2.53 V under 8.0 kW m −2 irradiation, powering multicolor LEDs and dual fans. This work establishes an efficient, stable radical‐based photothermal material and an integrated photo‐thermo‐electric platform for practical STEG applications.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 11, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (6)

K

Kang‐Jing Li

Key Laboratory of Magnetic Molecules and Magnetic Information Materials of the Ministry of Education School of Chemistry and Chemical Engineering Shanxi Normal University Taiyuan P.R. China

N

Nan Zhang

R

Ruo‐Tong Li

Key Laboratory of Magnetic Molecules and Magnetic Information Materials of the Ministry of Education School of Chemistry and Chemical Engineering Shanxi Normal University Taiyuan P.R. China

D

Dongpeng Yan

S

Shi‐Li Li

Key Laboratory of Magnetic Molecules and Magnetic Information Materials of the Ministry of Education School of Chemistry and Chemical Engineering Shanxi Normal University Taiyuan P.R. China

X

Xian‐Ming Zhang

Key Laboratory of Magnetic Molecules and Magnetic Information Materials of the Ministry of Education School of Chemistry and Chemical Engineering Shanxi Normal University Taiyuan P.R. China