Zhu Longzhen, Fei Ban, Xie Yulan, Cai Daoping, Chen Qidi, Zhan Hongbing
College of Materials Science and Engineering, Fuzhou University, Fuzhou 350108, P. R. China.
ACS Appl Mater Interfaces. 2021 May 19;13(19):22304-22313. doi: 10.1021/acsami.1c01711. Epub 2021 May 11.
Searching for high-performance Ni-based cathodes plays an important role in developing better aqueous nickel-zinc (Ni-Zn) batteries. For this purpose, herein, we demonstrate the design and synthesis of ultrathin α-Ni(OH) nanosheets branched onto metal-organic frameworks (MOFs)-derived 3D cross-linked N-doped carbon nanotubes encapsulated with tiny Co nanoparticles (denoted as Co@NCNTs/α-Ni(OH)), which are directly supported on a flexible carbon cloth (CC). An aqueous Ni-Zn battery employing the hierarchical CC/Co@NCNTs/α-Ni(OH) as the binder-free cathode and a commercial Zn plate as the anode is fabricated, which displays an ultrahigh capacity (316 mAh g) and energy density (540.4 Wh kg) at 1 A g as well as excellent rate capability (238 mAh g at 10 A g) and superior cycling performance (about 84% capacity retention after 2000 cycles at 10 A g). The impressive electrochemical performance might benefit from the rich active sites, rapid electron transfer, cushy electrolyte access, rapid ion transport, and robust structural stability. In addition, the quasi-solid-state CC/Co@NCNTs/α-Ni(OH)//Zn batteries are also successfully assembled with polymer electrolyte, indicating the great potential for portable and wearable electronics. This work might provide important guidance for constructing carbon-based hybrid materials directly supported on conductive substrates as high-performance electrodes for energy-related devices.
寻找高性能镍基阴极对于开发性能更优的水系镍锌(Ni-Zn)电池具有重要意义。为此,在此我们展示了一种超薄α-Ni(OH)纳米片的设计与合成,该纳米片生长在金属有机框架(MOF)衍生的三维交联氮掺杂碳纳米管上,且碳纳米管内包裹着微小的钴纳米颗粒(记为Co@NCNTs/α-Ni(OH)),它们直接负载在柔性碳布(CC)上。制备了一种水系Ni-Zn电池,该电池采用分级结构的CC/Co@NCNTs/α-Ni(OH)作为无粘结剂阴极,商业锌板作为阳极,在1 A g电流密度下展现出超高容量(316 mAh g)和能量密度(540.4 Wh kg),以及优异的倍率性能(10 A g电流密度下为238 mAh g)和卓越的循环性能(10 A g电流密度下2000次循环后容量保持率约为84%)。这种令人印象深刻的电化学性能可能得益于丰富的活性位点、快速的电子转移、便捷的电解质接触、快速的离子传输以及稳定的结构稳定性。此外,采用聚合物电解质还成功组装了准固态CC/Co@NCNTs/α-Ni(OH)//Zn电池,这表明其在便携式和可穿戴电子设备方面具有巨大潜力。这项工作可能为构建直接负载在导电基底上的碳基混合材料作为能源相关器件的高性能电极提供重要指导。