Shortwave‐Infrared Electrochromic Covalent Organic Framework Supercapacitor for Encapsulation‐Penetrative Energy Storage Monitoring

Electrochromic supercapacitors (EC-SCs) allow for the visual monitoring of energy storage states, while conventional devices operating only in the visible region cannot work under low-light or encapsulation conditions. Herein, shortwave infrared EC-SCs are precisely fabricated based on oriented covalent organic framework (COF) films, enabling encapsulation-penetrating energy storage monitoring within opaque media. The triphenylamine and thiophene units in the COF skeleton enable synergistic electrochemical energy storage and responsive absorption changes in the shortwave infrared (SWIR) region. Leveraging the strong penetrative capability of SWIR light, the state-of-charge can be detected in real time as a form of grayscale in SWIR imaging, even when SWIR EC-SCs are obstructed by opaque packages. This work establishes a paradigm for integrating energy storage and state-of-charge visualization functionalities into oriented COF electrodes via precise molecular design. It bridges the gap between conventional EC-SCs and their practical applications in portable, wearable, and implantable electronic devices.

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Publication Details

Journal
Small
Published
2026-09-18
DOI
https://doi.org/10.1002/smll.75832
Primary Topic
Covalent Organic Framework Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Shortwave‐Infrared Electrochromic Covalent Organic Framework Supercapacitor for Encapsulation‐Penetrative Energy Storage Monitoring

Qing Hao, Haibing Huang, Yingfei Wang, Hong Liu et al.
Small
Covalent Organic Framework Applications
article

Shortwave‐Infrared Electrochromic Covalent Organic Framework Supercapacitor for Encapsulation‐Penetrative Energy Storage Monitoring

Qing Hao, Haibing Huang, Yingfei Wang, Hong Liu, Yunzhi Qian
article en

Abstract

Electrochromic supercapacitors (EC-SCs) allow for the visual monitoring of energy storage states, while conventional devices operating only in the visible region cannot work under low-light or encapsulation conditions. Herein, shortwave infrared EC-SCs are precisely fabricated based on oriented covalent organic framework (COF) films, enabling encapsulation-penetrating energy storage monitoring within opaque media. The triphenylamine and thiophene units in the COF skeleton enable synergistic electrochemical energy storage and responsive absorption changes in the shortwave infrared (SWIR) region. Leveraging the strong penetrative capability of SWIR light, the state-of-charge can be detected in real time as a form of grayscale in SWIR imaging, even when SWIR EC-SCs are obstructed by opaque packages. This work establishes a paradigm for integrating energy storage and state-of-charge visualization functionalities into oriented COF electrodes via precise molecular design. It bridges the gap between conventional EC-SCs and their practical applications in portable, wearable, and implantable electronic devices.

Small
State Key Laboratory of Digital Medical Engineering (CN), Southeast University (CN)
National Natural Science Foundation of China, Natural Science Foundation of Jiangsu Province, Nanjing University, Fundamental Research Funds for the Central Universities
Affordable and clean energy
Openalex Percentile: Top 25%
Covalent Organic Framework Applications
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