Meng Dingding, Zhang Chi, Liang Yi, Qiu Weiye, Kong Fanping, He Xin, Chen Mei, Liang Ping, Zhang Zhonghua
School of Applied Physics and Materials, Wuyi University, Jiangmen, China.
School of Applied Physics and Materials, Wuyi University, Jiangmen, China.
J Colloid Interface Sci. 2021 Oct;599:280-290. doi: 10.1016/j.jcis.2021.04.102. Epub 2021 Apr 21.
Electrospinning is an effective technique to fabricate one-dimensional materials. In this study, cobalt-embedded carbon nanofibers (Co@CNFs) are obtained via carbonization of electrospun cobalt Prussian blue analogue (Co-Co PBA) under nitrogen atmosphere. The Co@CNFs have metallic cobalt surrounded by graphitic carbon shells and possess high specific surface area, rich porosity, high graphitic degree, and rational nitrogen doping. The structure merits endow them with excellent electrocatalytic performances for oxygen reduction reaction (ORR): an onset potential of 0.867 V vs. RHE and 0.784 V vs. RHE at j = - 3 mA cm with a four-electron transfer process. Through a further mild oxidation process, we obtain CoO nanoparticles-embedded nitrogen-doped carbon (CoO@CNFs) with spindle-like morphology. When working as the anode materials for lithium-ion batteries (LIBs), CoO@CNFs show high specific capacity, good stability, and excellent rate capability. The CoO@CNFs anode delivers a discharge specific capacity of 1404 mA h g after 100 cycles at a current density of 100 mA g and about 500 mA h g after 500 cycles at 2000 mA g. The diffusion- and capacitive-controlled processes both contribute to the charge storage of the CoO@CNFs electrode. This study provides a new strategy to fabricate the excellent electrocatalysts for ORR and anode materials for LIBs via facile electrospinning.
静电纺丝是制备一维材料的有效技术。在本研究中,通过在氮气气氛下对静电纺丝的钴普鲁士蓝类似物(Co-Co PBA)进行碳化获得了嵌入钴的碳纳米纤维(Co@CNFs)。Co@CNFs具有被石墨碳壳包围的金属钴,具有高比表面积、丰富的孔隙率、高石墨化程度和合理的氮掺杂。这些结构优点赋予它们优异的氧还原反应(ORR)电催化性能:相对于可逆氢电极(RHE)的起始电位为0.867 V,在j = -3 mA cm时相对于RHE为0.784 V,具有四电子转移过程。通过进一步的温和氧化过程,我们获得了具有纺锤状形态的嵌入CoO纳米颗粒的氮掺杂碳(CoO@CNFs)。当用作锂离子电池(LIBs)的负极材料时,CoO@CNFs表现出高比容量、良好的稳定性和优异的倍率性能。CoO@CNFs负极在100 mA g的电流密度下循环100次后放电比容量为1404 mA h g,在2000 mA g的电流密度下循环500次后约为500 mA h g。扩散控制和电容控制过程都对CoO@CNFs电极的电荷存储有贡献。本研究提供了一种通过简便的静电纺丝制备用于ORR的优异电催化剂和用于LIBs的负极材料的新策略。