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Covalent organic frameworks (COFs), a conspicuous porous material, harvest great promise for rechargeable batteries, owing to well-defined pore structure and structural precision. However, designing high-rate-capacity COF cathode by balancing ions diffusion kinetics and electron transport kinetics based on the framework and pore chemistry remains a challenge. Here, a heteroporous donor-acceptor (D-A) engineering is proposed to design one novel kind of COF (HDA-COF) with optimized electronic conductivity (σ) and ionic conductivity (σ). The heteroporous D-A framework featuring with triangle-like micropores for promoted electron transport and enlarged hexagonal-like mesopores for facilitated ions diffusion rate. HDA-COF demonstrates high compatibility with high σ and σ verified by the combination of experimental results and theoretical calculations. Notably, HDA-COF displays favorable fast-charging performance with 104 mAh g (277 Wh kg, 5 A g) and shorter charge time (75 s), maintaining steadily cycling for 1000 cycles at 5 A g. Also, it delivers high discharge capacity of 259 mAh g (627 Wh kg, 0.05 A g). This work offers in-depth insights in constructing high-rate-capacity COF cathode by synchronously optimizing σ and σ within a heteroporous D-A engineering.
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http://dx.doi.org/10.1002/anie.202517853 | DOI Listing |
Angew Chem Int Ed Engl
August 2025
State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering, Donghua University, Shanghai, 201620, China.
Covalent organic frameworks (COFs), a conspicuous porous material, harvest great promise for rechargeable batteries, owing to well-defined pore structure and structural precision. However, designing high-rate-capacity COF cathode by balancing ions diffusion kinetics and electron transport kinetics based on the framework and pore chemistry remains a challenge. Here, a heteroporous donor-acceptor (D-A) engineering is proposed to design one novel kind of COF (HDA-COF) with optimized electronic conductivity (σ) and ionic conductivity (σ).
View Article and Find Full Text PDFPolymers (Basel)
September 2024
Key Laboratory of Ministry of Education for Advanced Materials in Tropical Island Resources, Hainan University, No. 58, Renmin Avenue, Haikou 570228, China.
Covalent organic frameworks (COFs) have garnered significant interest within the scientific community due to their distinctive ability to act as organic semiconductors responsive to visible light. This unique attribute makes them up-and-coming candidates for facilitating photocatalytic organic reactions. Herein, two donor-acceptor COFs, TPE-BSD-COF and TPE-BD-COF, have been designed and synthesized by incorporating electron-rich tetraphenylethylene and electron-deficient benzoselenadiazole and benzothiadiazole units into the framework through a Schiff-base polycondensation reaction.
View Article and Find Full Text PDFACS Appl Mater Interfaces
May 2022
Ministry of Education Key Laboratory of Analytical Science for Food Safety and Biology, Fujian Provincial Key Laboratory of Analysis and Detection Technology for Food Safety, College of Chemistry, Fuzhou University, Fuzhou, Fujian 350108, China.
Nanomaterials with enzyme-like characteristics (called nanozymes) show their extreme potentials as alternatives to natural enzymes. Covalent organic frameworks (COFs) as metal-free nanozymes have attracted huge attention for catalytic applications due to their flexible molecular design and synthetic strategies and conjugated, porous, and chemically stable architectures. Designing high-performance two-dimensional (2D) porous COF materials embedded with functional building units for modulating nanozymes' catalytic activity is of immense importance in contemporary research.
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