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Review Article | Open Access

Construction of conjugated scaffolds driven by mechanochemistry towards energy storage applications

Juntian FanaZhenzhen Yangb( )Sheng Daia,b( )
Department of Chemistry, Institute for Advanced Materials and Manufacturing, University of Tennessee, Knoxville, TN, 37996, USA
Chemical Sciences Division, Oak Ridge National Laboratory, Oak Ridge, TN, 37831, USA
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HIGHLIGHTS

● Mechanochemistry is an efficient and sustainable tool for green chemistry.

● Mechanochemistry is promising for synthesizing diverse conjugated scaffolds.

● Conjugated scaffolds exhibit superb electrochemical performance.

Graphical Abstract

Abstract

Mechanochemistry has been recognized as an efficient and sustainable methodology to provide a unique driven force and reaction environments under ambient and neat conditions for the construction of functionalized materials possessing promising properties. Among them, highly porous conjugated scaffolds with attractive electronic conductivities and high surface areas are one of the representative categories exhibiting diverse task-specific applications, especially in electrochemical energy storage. In recent years, the mechanochemistry-driven procedures have been deployed to construct conjugated scaffolds with engineered structures and properties leveraging the tunability in chemical structures of building blocks and polymerization capability of diverse catalysts. Therefore, a thorough review of related works is required to gain an in-depth understanding of the mechanochemical synthesis procedure and property-performance relationship of the as-produced conjugated scaffolds. Herein, the mechanochemistry-driven construction of conjugated porous networks (CPNs), the carbon-based materials (e.g., graphite and graphyne), and carbon supported single atom catalysts (CS-SACs) are discussed and summarized. The electrochemical performance of the afforded conductive scaffolds as electrode materials in supercapacitors and alkali-ion batteries is elucidated. Finally, the challenges and potential opportunities related to the construction of conjugated scaffolds driven by mechanochemistry are also discussed and concluded.

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Green Chemical Engineering
Pages 155-172
Cite this article:
Fan J, Yang Z, Dai S. Construction of conjugated scaffolds driven by mechanochemistry towards energy storage applications. Green Chemical Engineering, 2024, 5(2): 155-172. https://doi.org/10.1016/j.gce.2023.04.001

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Received: 21 February 2023
Revised: 27 March 2023
Accepted: 06 April 2023
Published: 07 April 2023
© 2023 Institute of Process Engineering, Chinese Academy of Sciences.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

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