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用于柔性储能器件的通过3D活性涂层制备的坚固、导电且高负载量的纤维状电极。

Robust, Conductive, and High Loading Fiber-Shaped Electrodes Fabricated by 3D Active Coating for Flexible Energy Storage Devices.

作者信息

Lan Xingxian, Tang Taijin, Xie Huarui, Hasan Syed Waqar, Liang Lizhe, Tian Zhi Qun, Shen Pei Kang

机构信息

School of Chemistry and Chemical Engineering, Guangxi University, Key Laboratory of New Processing Technology for Non-ferrous Metal and Materials of Ministry of Education, Guangxi Key Laboratory of Electrochemical Energy Materials, Nanning 530004, China.

Collaborative Innovation Center of Sustainable Energy Materials, School of Physical Science and Technology, Guangxi University, Nanning 530004, China.

出版信息

Nano Lett. 2022 Jul 27;22(14):5795-5802. doi: 10.1021/acs.nanolett.2c01290. Epub 2022 Jul 12.

Abstract

Flexible power sources are critical to achieve the wide adoption of portable and wearable electronics. Herein, a facile and general strategy of fabricating a fibrous electrode was developed by 3D active coating technology, in which a stepping syringe with electrode paste was synchronously injected onto a rotating conductive wire, distinguished from the conventional direct-write 3D printing without a current collector. A series of such electrodes with different coating weight can be fabricated accurately and efficiently by adjusting critical process parameters following a set of derived equations. The demonstrated fibrous Zn-MnO battery with a high commercial ε-MnO loading of 14.9 mg cm onto a stainless steel wire shows a reasonable energy density of 108 mWh cm, while the fiber-shaped supercapacitor with commercial porous graphene exhibits a high capacitance of 142.9 F g and good durability for bending 10,000 cycles. This work constructs a bridge between materials and fiber-shaped electrodes for flexible energy storage devices.

摘要

柔性电源对于便携式和可穿戴电子产品的广泛应用至关重要。在此,通过3D活性涂层技术开发了一种简便通用的制造纤维电极的策略,其中将装有电极糊的步进注射器同步注射到旋转的导线上,这与没有集流体的传统直写式3D打印不同。通过遵循一组推导方程调整关键工艺参数,可以准确高效地制造出一系列具有不同涂层重量的此类电极。在不锈钢丝上展示的具有14.9 mg cm的高商业ε-MnO负载量的纤维状锌锰电池显示出合理的能量密度108 mWh cm,而具有商业多孔石墨烯的纤维状超级电容器则表现出142.9 F g的高电容以及10000次弯曲的良好耐久性。这项工作为柔性储能装置在材料和纤维状电极之间架起了一座桥梁。

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