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用于高性能超级电容器的三明治型多孔结构Ni(OH)/NCNWs/rGO复合材料的简便合成

Facile Synthesis of Sandwich-Type Porous Structured Ni(OH)/NCNWs/rGO Composite for High Performance Supercapacitor.

作者信息

Duan Xiaosen, Dou Mingyu, Liu Lingyang, Zhang Long, Bai Xianrui, Yang Ruixin, Wang Hengyi, Dou Jianmin

机构信息

Shandong Provincial Key Laboratory of Chemical Energy Storage and Novel Cell Technology, School of Chemistry and Chemical Engineering, Liaocheng University, Liaocheng 252059, China.

出版信息

Molecules. 2025 Feb 28;30(5):1119. doi: 10.3390/molecules30051119.

Abstract

Nickel hydroxide has ultra-high energy storage capacity in supercapacitors, but poor electrical conductivity limits their further application. The use of graphene to improve its conductivity is an effective measure, but how to suppress the stacking of graphene and improve the overall performance of composite materials has become a new challenge. In this work, a well-designed substrate of N-doped carbon nanowires with reduced graphene oxide (NCNWs/rGO) was fabricated by growing polypyrrole (PPy) nanowires between GO nanosheets layers and then calcining them at high temperatures. This NCNWs/rGO substrate can effectively avoid the stacking of rGO nanosheets, and provides sufficient sites for the subsequent in situ growth of Ni(OH), forming a uniform and stable Ni(OH)/NCNWs/rGO composite material. Benefiting from the abundant pores, high specific surface area (107.2 m g), and conductive network throughout the NCNWs/rGO substrate, the deposited Ni(OH) can not only realize an ultra-high loading ratio, but also exposes more active surfaces (221.3 m g). After a comprehensive electrochemical test, it was found that the Ni(OH)/NCNWs/rGO positive materials have a high specific capacitance of 2016.6 F g at a scan rate of 1 mV s, and exhibit significantly better stability. The assembled Ni(OH)/NCNWs/rGO//AC asymmetric supercapacitor could achieve a high energy density of 85.2 Wh kg at power densities of 381 W kg. In addition, the asymmetric supercapacitor has excellent stability and could retain 70.1% of initial capacitance after 10,000 cycles. These results demonstrate the feasibility of using NCNWs/rGO substrate to construct high-performance supercapacitor electrode materials, and it is also expected to be promoted in other active composite materials.

摘要

氢氧化镍在超级电容器中具有超高的储能容量,但较差的导电性限制了其进一步应用。使用石墨烯来提高其导电性是一种有效措施,但如何抑制石墨烯的堆叠并提高复合材料的整体性能已成为一项新挑战。在这项工作中,通过在氧化石墨烯(GO)纳米片层之间生长聚吡咯(PPy)纳米线,然后在高温下煅烧,制备了一种精心设计的氮掺杂碳纳米线与还原氧化石墨烯的基底(NCNWs/rGO)。这种NCNWs/rGO基底能够有效避免rGO纳米片的堆叠,并为后续原位生长Ni(OH)₂提供足够的位点,从而形成均匀且稳定的Ni(OH)₂/NCNWs/rGO复合材料。得益于NCNWs/rGO基底中丰富的孔隙、高比表面积(107.2 m²/g)以及贯穿的导电网络,沉积的Ni(OH)₂不仅能够实现超高的负载率,还能暴露出更多的活性表面(221.3 m²/g)。经过全面的电化学测试发现,Ni(OH)₂/NCNWs/rGO正极材料在扫描速率为1 mV/s时具有2016.6 F/g的高比电容,并且表现出明显更好的稳定性。组装的Ni(OH)₂/NCNWs/rGO//AC不对称超级电容器在功率密度为381 W/kg时可实现85.2 Wh/kg 的高能量密度。此外,该不对称超级电容器具有优异的稳定性,在10000次循环后可保留70.1%的初始电容。这些结果证明了使用NCNWs/rGO基底构建高性能超级电容器电极材料的可行性,并且有望在其他活性复合材料中得到推广。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f431/11901611/6a53dd0c894d/molecules-30-01119-g001.jpg

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