Synergistic Linkage Engineering in Donor–Acceptor Covalent Organic Frameworks for NIR-II Absorption and Efficient Photothermal Conversion

Abstract Covalent organic frameworks (COFs) are emerging crystalline porous polymers with precisely defined structures and tunable optoelectronic properties. However, developing COFs that simultaneously achieve NIR-II light absorption and controlled excited-state dynamics remains challenging, limiting their applications in advanced photothermal energy conversion. Herein, we report a strategy that synergistically integrates linkage engineering and donor–acceptor modulation to intrinsically regulate the photophysical behavior of COFs, as demonstrated by the synthesis of a novel donor–acceptor azo-linked COF (Azo-COF-DA). Compared with its imine-linked analogue (Im-COF-DA), Azo-COF-DA exhibits remarkable NIR-II absorption (1500 nm vs 650 nm) and a significantly narrowed bandgap (1.16 eV vs 2.34 eV), highlighting the critical role of azo linkages in maximizing electronic delocalization. Comprehensive spectroscopic and theoretical analyses reveal significantly enhanced vibronic coupling in Azo-COF-DA upon photoexcitation, thereby promoting efficient nonradiative relaxation. Consequently, Azo-COF-DA achieves a temperature increase 10.8-fold higher than that of Im-COF-DA, translating this superior photothermal conversion into a record COF-based thermoelectric output voltage of 262 mV under one-sun irradiation. Furthermore, an integrated solar-driven water evaporation–thermoelectric generator simultaneously achieves a water evaporation rate of 1.44 kg m–2 h–1 and a voltage output of 116 mV. This work reveals the importance of linkage replacement in governing π-electronic delocalization and excited-state relaxation, providing transferable structural design guidelines for tailoring excited-state dynamics in porous organic materials toward high-performance NIR-II photothermal applications.

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Journal
Journal of the American Chemical Society
Published
2026-09-29
DOI
https://doi.org/10.1021/jacs.6c07909
Primary Topic
Covalent Organic Framework Applications
Type
article
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Synergistic Linkage Engineering in Donor–Acceptor Covalent Organic Frameworks for NIR-II Absorption and Efficient Photothermal Conversion

Zhi‐Bei Zhou, Shengqiang Xiao, Yubin Fu, Peng‐Ju Tian et al.
Journal of the American Chemical Society
Covalent Organic Framework Applications
article

Synergistic Linkage Engineering in Donor–Acceptor Covalent Organic Frameworks for NIR-II Absorption and Efficient Photothermal Conversion

Zhi‐Bei Zhou, Shengqiang Xiao, Yubin Fu, Peng‐Ju Tian, Shunqi Xu, Xin Zhao, Wang Zhen-xue, Qiao-Yan Qi, Xi-Jun Wen, Hui-Hui Sun
article en

Abstract

Abstract Covalent organic frameworks (COFs) are emerging crystalline porous polymers with precisely defined structures and tunable optoelectronic properties. However, developing COFs that simultaneously achieve NIR-II light absorption and controlled excited-state dynamics remains challenging, limiting their applications in advanced photothermal energy conversion. Herein, we report a strategy that synergistically integrates linkage engineering and donor–acceptor modulation to intrinsically regulate the photophysical behavior of COFs, as demonstrated by the synthesis of a novel donor–acceptor azo-linked COF (Azo-COF-DA). Compared with its imine-linked analogue (Im-COF-DA), Azo-COF-DA exhibits remarkable NIR-II absorption (1500 nm vs 650 nm) and a significantly narrowed bandgap (1.16 eV vs 2.34 eV), highlighting the critical role of azo linkages in maximizing electronic delocalization. Comprehensive spectroscopic and theoretical analyses reveal significantly enhanced vibronic coupling in Azo-COF-DA upon photoexcitation, thereby promoting efficient nonradiative relaxation. Consequently, Azo-COF-DA achieves a temperature increase 10.8-fold higher than that of Im-COF-DA, translating this superior photothermal conversion into a record COF-based thermoelectric output voltage of 262 mV under one-sun irradiation. Furthermore, an integrated solar-driven water evaporation–thermoelectric generator simultaneously achieves a water evaporation rate of 1.44 kg m–2 h–1 and a voltage output of 116 mV. This work reveals the importance of linkage replacement in governing π-electronic delocalization and excited-state relaxation, providing transferable structural design guidelines for tailoring excited-state dynamics in porous organic materials toward high-performance NIR-II photothermal applications.

Journal of the American Chemical Society
Wuhan University of Technology (CN), Chinese Academy of Sciences (CN), Southeast University (BD), Shanghai Institute of Organic Chemistry (CN), Southeast University (CN)
Affordable and clean energy
Openalex Percentile: Top 26%
Covalent Organic Framework Applications
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