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用于高效超级电容器的基于无粘结剂钼掺杂氧化钴的集成电极,通过放电腐蚀制备。

Binder-Less Molybdenum Doped CoO Based Integrated Electrodes Fabricated by Electric Discharge Corrosion for High-Efficiency Supercapacitors.

作者信息

Chen Ri, Xu Zehan, Xu Yunying, Lei Tujun, Liu Dawei, Chen Chunlong, Wang Wenxia, Zhitomirsky Igor, Qu Muchao, Zhang Guoying

机构信息

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

School of Education, Guangdong Polytechnic Normal University, Guangzhou 510665, China.

出版信息

Materials (Basel). 2024 Dec 27;18(1):80. doi: 10.3390/ma18010080.

Abstract

Due to its low cost, natural abundance, non-toxicity, and high theoretical capacitance, cobalt oxide (CoO) stands as a promising candidate electrode material for supercapacitors. In this study, binder-less molybdenum doped CoO (Mo@CoO) integrated electrodes were one-step fabricated using a simple electric discharge corrosion (EDC) method. This EDC method enables the direct synthesis of Mo@CoO active materials with oxygen vacancy on cobalt substrates, without any pre-made templates, conductive additives, or chemicals. Most importantly, the EDC method enables precise control over the discharge processing parameter of pulse width, which facilitates tailoring the surface morphologies of the as-prepared Mo@CoO active materials. It was found that the fabricated Mo@CoO based symmetric supercapacitor prepared by a pulse width of 24 μs (Mo@CoO-SCs24) achieved a maximum areal capacitance 36.0 mF cm (0.15 mA cm), which is 1.83 and 1.97 times higher than that of Mo@CoO-SCs12 and Mo@CoO-SCs36. Moreover, the Mo@CoO-SCs24 devices could be worked at 10 V s, which demonstrates their fast charge/discharge characteristic. These results demonstrated the significant potential of the EDC strategy for efficiency fabricating various metal oxide binder-less integrated electrodes for various applications, like supercapacitors, batteries and sensors.

摘要

由于其成本低、天然丰度高、无毒且理论电容高,氧化钴(CoO)是一种很有前景的超级电容器候选电极材料。在本研究中,采用简单的放电腐蚀(EDC)方法一步制备了无粘结剂的钼掺杂CoO(Mo@CoO)集成电极。这种EDC方法能够在钴基底上直接合成具有氧空位的Mo@CoO活性材料,无需任何预制模板、导电添加剂或化学物质。最重要的是,EDC方法能够精确控制脉冲宽度的放电处理参数,这有助于定制所制备的Mo@CoO活性材料的表面形貌。结果发现,通过24 μs脉冲宽度制备的基于Mo@CoO的对称超级电容器(Mo@CoO-SCs24)实现了36.0 mF cm(0.15 mA cm)的最大面积电容,分别是Mo@CoO-SCs12和Mo@CoO-SCs36的1.83倍和1.97倍。此外,Mo@CoO-SCs24器件能够在10 V s下工作,这表明了它们的快速充放电特性。这些结果证明了EDC策略在高效制备用于各种应用(如超级电容器、电池和传感器)的各种无粘结剂金属氧化物集成电极方面的巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b35a/11721405/1dc7272e3ae2/materials-18-00080-g001.jpg

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