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电纺碳纳米纤维在能源应用中面临的关键问题:现有方法与挑战

Key issues facing electrospun carbon nanofibers in energy applications: on-going approaches and challenges.

作者信息

Nie Guangdi, Zhao Xinwei, Luan Yaxue, Jiang Jiangmin, Kou Zongkui, Wang John

机构信息

Industrial Research Institute of Nonwovens & Technical Textiles, College of Textiles and Clothing, Qingdao University, Qingdao, 266071, P. R. China.

出版信息

Nanoscale. 2020 Jul 2;12(25):13225-13248. doi: 10.1039/d0nr03425h.

Abstract

Electrospun carbon nanofibers (CNFs), with one-dimensional (1D) morphology, tunable size, mechanical flexibility, and functionalities by themselves and those that can be added onto them, have witnessed the intensive development and extensive applications in energy storage and conversion, such as supercapacitors, batteries, and fuel cells. However, conventional solid CNFs often suffer from a rather poor electrical conductivity and low specific surface area, compared with the graphene and carbon nanotube counterparts. A well-engineered porous structure in CNFs increases their surface areas and reactivity, but there is a delicate balance between the level and type of pores and mechanical robustness. In addition, CNFs by themselves often show unsatisfactory electrochemical performance in energy storage and conversion, where, to endow them with high and durable activity, one effective approach is to dope CNFs with certain heteroatoms. Up to now, various activation strategies have been proposed and some of them have demonstrated great success in addressing these key issues. In this review, we focus on the recent advances in the issue-oriented schemes for activating the electrospun CNFs in terms of enhancing the conductivity, modulating pore configuration, doping with heteroatoms, and reinforcing mechanical strength, in close reference to their applications in supercapacitors. The basic scientific principles involved in these activation processes and their effectiveness in boosting the electrochemical performance of CNFs are examined. Finally, some of the on-going challenges and future perspectives in engineering CNFs for better performance are highlighted.

摘要

具有一维(1D)形态、尺寸可调、机械柔韧性以及自身具备和可添加功能的静电纺丝碳纳米纤维(CNFs),在能量存储与转换领域,如超级电容器、电池和燃料电池中,得到了广泛的发展和应用。然而,与石墨烯和碳纳米管相比,传统的固态CNFs通常导电性较差且比表面积较低。精心设计的CNFs多孔结构可增加其表面积和反应活性,但孔隙的水平和类型与机械强度之间存在微妙的平衡。此外,CNFs自身在能量存储与转换中往往表现出不尽人意的电化学性能,为赋予其高且持久的活性,一种有效的方法是用某些杂原子对CNFs进行掺杂。到目前为止,已经提出了各种活化策略,其中一些在解决这些关键问题方面取得了巨大成功。在这篇综述中,我们重点关注针对静电纺丝CNFs的面向问题的活化方案的最新进展,这些方案涉及提高导电性、调节孔结构、掺杂杂原子以及增强机械强度,并紧密结合它们在超级电容器中的应用。研究了这些活化过程中涉及的基本科学原理及其在提升CNFs电化学性能方面的有效性。最后,强调了在设计性能更优的CNFs时一些持续存在的挑战和未来展望。

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