通过调整聚丙烯腈的聚合状态实现具有可控纳米结构的高微孔利用率碳气凝胶,用于储能系统

SusMat Pub Date : 2024-06-14 DOI:10.1002/sus2.217
Yuan-You Peng, Yi-Han Fu, Meimei Yu, Lei Zhao, Huanzhong Zeng, Shengtao Niu, Jie Zhang, Junlong Chen, Guang Liu, Youzhi Wu, F. Ran
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引用次数: 0

摘要

设计和优化多孔碳电极的孔隙结构对各种储能系统至关重要。本研究开发了一种创新的喷雾相变策略,用于快速高效地制备可控多孔碳气凝胶。此外,还通过调整汉森溶解度参数来控制聚丙烯腈的聚集结构,从而调节电极材料结构。此外,对喷雾相变过程的理论分析表明,这一调节过程受溶剂流体力学直径和相变动力学的共同调控。通过优化,获得了一种新型多孔碳材料,该材料作为电极材料表现出优异的性能。将其用于超级电容器储能时,在 6 M KOH 电解质溶液中显示出 373.1 F g-1 的高比电容。与此同时,研究还发现多孔电极的制备策略具有可设计性强、通用性广、操作简单和效率高等显著优势,因此有望大规模制备各种多孔电极材料和各种类型的电极,用于各种储能应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High micropore‐utilization carbon aerogel with controlled nanostructures via adjusting aggregation state of polyacrylonitrile for energy storage systems
Designing and optimizing the pore structure of porous carbon electrodes is essential for diverse energy storage systems. In this study, an innovative approach spray phase‐inversion strategy was developed for the rapid and efficient fabrication of controlled porous carbon aerogel. Moreover, the aggregation structure of polyacrylonitrile is controlled by adjusting the Hansen's solubility parameter, thereby regulating the electrode material structure. Furthermore, the theoretical analysis of the spray phase‐inversion process revealed that this regulation process is jointly regulated by solvent hydrodynamic diameter and phase‐inversion kinetics. Through optimization, a novel porous carbon material was obtained that exhibited excellent performance as an electrode material. When utilized in supercapacitors for energy storage, it demonstrated a high specific capacitance of 373.1 F g−1 in a 6 M KOH electrolyte solution. Simultaneously, it has been observed that the preparation strategy for porous electrodes offers notable advantages in terms of excellent designability, broad universality, simplicity, and high efficiency, thereby holding promise for large‐scale fabrication of diverse porous electrode materials and various types of electrodes for diverse energy storage applications.
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