Architectural design and optimization of internal structures in 3D printed electrodes for superior supercapacitor performance.

J Colloid Interface Sci

Institute of Technology for Carbon Neutralization, Yangzhou University, Yangzhou 225127, Jiangsu, PR China. Electronic address:

Published: January 2025

The architecture of electrodes plays a pivotal role in the transfer and transportation of charges during electrochemical reactions. Selecting optimal electrode materials and devising well-conceived electrode structures can substantially enhance the electrochemical performance of devices. This manuscript leverages 3D printing technology to fabricate asymmetric supercapacitor devices featuring regular layered configurations. By investigating the impact of various materials on the internal architecture of printed electrodes, we establish a stratified electrode structure with an orderly arrangement, thereby significantly improving asymmetric charge transfer between electrodes. The application of 3D printing technology to construct electrode structures effectively mitigates the agglomeration of electrode materials. The 3D-printed VCG//MXene devices demonstrate exceptional areal capacitance (205.57 mF cm) and energy density (60.03 μWh cm), with a power density of 0.174 W cm. Consequently, selecting appropriate materials for fabricating printable electrode structures and achieving efficient 3D printing is anticipated to offer novel insights into the construction and enhancement of miniature asymmetric micro-supercapacitor (MSCs) devices.

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Source
http://dx.doi.org/10.1016/j.jcis.2024.08.053DOI Listing

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