Two‐Dimensional CuTCNQ Built From Supercritical CO 2 ‐Induced Conformational Transform for Charge Transfer and Electron Modulation

ABSTRACT The two‐dimensional (2D) metal‐organic frameworks (MOFs) features intrinsic structural peculiarities and high structural design ability, which is considered as a unique platform for prominent electrical and optical applications. A deeper understanding of the electrical and optical properties that are determined by the function of 2D MOFs is crucial for advancing optoelectronic applications. Herein, we propose a novel strategy to enhance light utilization, charge transfer ability and electron dynamics of 2D MOFs by modulating the coordinative environment. The bulk copper tetracyanoquinodimethane (CuTCNQ) is converted into 2D nanosheets (2D CuTCNQ) via the assistance of supercritical carbon dioxide (SC CO 2 ). The solvent effects of SC CO 2 significantly tune the thermodynamical kinetic of bulk CuTCNQ, leading to partial detachment of ligands and the formation of 2D CuTCNQ with unique electron configuration. Simultaneously, 2D CuTCNQ exhibits broadened visible light absorption and accelerated electronic kinetics in comparison with bulk CuTCNQ. Further, the optimized 2D CuTCNQ was employed as a photoanode and it exhibits significantly enhanced photoelectrochemical (PEC) performance, highlighting the potential application in optoelectronic technology. Therefore, such coordinative environment modulation strategy via SC CO 2 opens new avenues to optimize photoelectric properties, and as well as to provide rational design on multifunctional 2D MOFs.

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Publication Details

Journal
Small Methods
Published
2026-10-07
DOI
https://doi.org/10.1002/smtd.71101
Primary Topic
Metal-Organic Frameworks: Synthesis and Applications
Type
article
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article

Two‐Dimensional CuTCNQ Built From Supercritical CO 2 ‐Induced Conformational Transform for Charge Transfer and Electron Modulation

Weiqian Kong, Qun Jie Xu, Pengfei Yan, Wei Liu et al.
Small Methods
Metal-Organic Frameworks: Synthesis and Applications
article

Two‐Dimensional CuTCNQ Built From Supercritical CO 2 ‐Induced Conformational Transform for Charge Transfer and Electron Modulation

Weiqian Kong, Qun Jie Xu, Pengfei Yan, Wei Liu, Xiaoli Zheng, Qinyong Tian, Wenzhuo Wu, Song Xu, Zongwei Chen
article en

Abstract

ABSTRACT The two‐dimensional (2D) metal‐organic frameworks (MOFs) features intrinsic structural peculiarities and high structural design ability, which is considered as a unique platform for prominent electrical and optical applications. A deeper understanding of the electrical and optical properties that are determined by the function of 2D MOFs is crucial for advancing optoelectronic applications. Herein, we propose a novel strategy to enhance light utilization, charge transfer ability and electron dynamics of 2D MOFs by modulating the coordinative environment. The bulk copper tetracyanoquinodimethane (CuTCNQ) is converted into 2D nanosheets (2D CuTCNQ) via the assistance of supercritical carbon dioxide (SC CO 2 ). The solvent effects of SC CO 2 significantly tune the thermodynamical kinetic of bulk CuTCNQ, leading to partial detachment of ligands and the formation of 2D CuTCNQ with unique electron configuration. Simultaneously, 2D CuTCNQ exhibits broadened visible light absorption and accelerated electronic kinetics in comparison with bulk CuTCNQ. Further, the optimized 2D CuTCNQ was employed as a photoanode and it exhibits significantly enhanced photoelectrochemical (PEC) performance, highlighting the potential application in optoelectronic technology. Therefore, such coordinative environment modulation strategy via SC CO 2 opens new avenues to optimize photoelectric properties, and as well as to provide rational design on multifunctional 2D MOFs.

Small Methods
Zhengzhou University (CN)
Openalex Percentile: Top 28%
Metal-Organic Frameworks: Synthesis and Applications
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Two‐Dimensional CuTCNQ Built From Supercritical CO 2 ‐Induced Conformational Transform for Charge Transfer and Electron Modulation — Weiqian Kong, Qun Jie Xu, et al. · Small Methods (2026) | TGRS Research Map | TGRS