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Atomically dispersed cobalt in core-shell carbon nanofiber membranes as super-flexible freestanding air-electrodes for wearable Zn-air batteries

材料科学 纳米纤维 电极 碳纳米纤维 纳米技术 芯(光纤) 可穿戴计算机 碳纤维 化学工程 壳体(结构) 复合材料 碳纳米管 冶金 复合数 嵌入式系统 物理化学 工程类 化学 生物 遗传学 计算机科学
作者
Zian Xu,Jian Zhu,Jingze Shao,Yu Xia,Jochi Tseng,Chuanlai Jiao,Guangyuan Ren,Pengfei Liu,Guangshe Li,Rouxi Chen,Shaoqing Chen,Fuqiang Huang,Hsing‐Lin Wang
出处
期刊:Energy Storage Materials [Elsevier BV]
卷期号:47: 365-375 被引量:84
标识
DOI:10.1016/j.ensm.2022.02.004
摘要

• This work represents the first-ever attempt of introducing specific carbon nanofiber-based membranes which is truly flexible via electrospun technique. • Due to good integration of Zn/Co-ZiFs and fiber precursor, the Co-N 4 sites are atomically dispersed in the crosslinked flexible nanofibers. • A correlation between flexibility and high-efficiency of air-electrodes for Zn-air batteries is elucidated, opening a new area of structure-based design and development of carbon nanofibers by core-shell electrospinning approach. Highly efficient and flexible air-electrodes play a vital role in the development of solid-state metal-air batteries for wearable electronic devices. However, the practical application of air-electrodes is impeded by the multistep synthesis and poor flexibility. Herein, metal/nitrogen co-doped carbon nanofiber membranes are synthesized by integrated core-shell electrospun, in which Co-N 4 sites are atomically dispersed in the porous shell and specific carbon nanofibers with super-flexibility form backbones in the core. Owing to a high specific surface area, a 3D porous network structure and atomically dispersed Co-N 4 active sites, as-prepared membranes demonstrate a remarkable bifunctional electrocatalytic performance towards oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) with a low potential gap of 0.719 V. Furthermore, the flexible Zn–air battery featuring a freestanding air-electrode by as-fabricated membranes displays an outstanding open-circuit voltage (1.461 V), a high peak power density (60.3 mW cm −2 ) and an ultra-narrow and stable discharge-charge voltage gap of 0.61 V under different bending angles, which are among the best values reported for self-supported flexible Zn-air batteries. This work paves a new way to prepare integrated freestanding air-electrodes as power sources for flexible electronic devices. .
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