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电火花线切割加工电压对掺钼V-VO基阿基米德微超级电容器性能的影响

The impact of processing voltage of wire electric discharge machining on the performance of Mo doped V-VO based Archimedean micro-supercapacitors.

作者信息

Chen Ri, Qin Jie, Xu Zehan, Lv Siqi, Tao Zhenhao, He Jiale, Zhou Peipei, Shu Zhaoyu, Zhuang Zhixin, Wang Wenxia, Xu Yunying, Xu Lanying, Deng Cheng, Zhitomirsky Igor, Shi Kaiyuan

机构信息

Department of Mechatronic Engineering, Guangdong Polytechnic Normal University Guangzhou 510665 China

School of Electrical Engineering, Xinjiang Railway Vocational and Technical College Hami Xinjiang 839000 China

出版信息

RSC Adv. 2024 Sep 6;14(39):28543-28554. doi: 10.1039/d4ra04909h. eCollection 2024 Sep 4.

Abstract

Vanadium oxide-based electrode materials have attracted increasing attention owing to their extraordinary capacitance and prolonged lifespan, excellent conductivity and outstanding electrochemical reversibility. However, the development of vanadium oxide-based integrated electrodes with outstanding capacitive performance is an enduring challenge. This research reports a facile method for structuring 3D Archimedean micro-supercapacitors (AMSCs) composed of Mo doped V-VO (Mo@V-VO) based integrated electrodes with designable geometric shape, using computer-aided wire electric discharge machining (WEDM). The performance of Mo@V-VO based AMSCs manufactured by different processing voltages of 60 V, 80 V and 100 V were evaluated. It was found that 80 V is the optimal processing voltage for manufacturing Mo@V-VO based AMSCs with the best electrochemical performance. This device demonstrates superior capacitive behavior even at an ultra-high scan rate of 50, 000 mV s, and achieves a good capacitance retention rate of 94.4% after 2000 cycles. Additionally, the characteristics of electric field distribution were also simulated for optimizing the geometric structure of the microdevices. This WEDM fabrication technique, which is easy, secure, patternable, efficient, economical, eco-friendly, and does not require binders or conductive additives, enables the development of high-capacity 3D pseudocapacitive micro-supercapacitors and demonstrates the great potential for metal oxide synthesis and microdevice manufacturing.

摘要

基于氧化钒的电极材料因其非凡的电容、延长的寿命、优异的导电性和出色的电化学可逆性而受到越来越多的关注。然而,开发具有出色电容性能的基于氧化钒的集成电极是一项持久的挑战。本研究报告了一种简便的方法,用于构建由基于钼掺杂的V-VO(Mo@V-VO)集成电极组成的具有可设计几何形状的三维阿基米德微超级电容器(AMSC),采用计算机辅助电火花线切割加工(WEDM)。评估了通过60V、80V和100V不同加工电压制造的基于Mo@V-VO的AMSC的性能。发现80V是制造具有最佳电化学性能的基于Mo@V-VO的AMSC的最佳加工电压。该器件即使在50000mV s的超高扫描速率下也表现出优异的电容行为,并在2000次循环后实现了94.4%的良好电容保持率。此外,还模拟了电场分布特性以优化微器件的几何结构。这种WEDM制造技术简单、安全、可图案化、高效、经济、环保,且不需要粘合剂或导电添加剂,能够开发高容量的三维赝电容微超级电容器,并展示了金属氧化物合成和微器件制造的巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4dfd/11378030/8f0ba606cf6f/d4ra04909h-f1.jpg

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