ZnxMnO2/PPy Nanowires Composite as Cathode Material for Aqueous Zinc-Ion Hybrid Supercapacitors

Yujia Xue, Jinghao Huo, Xin Wang, Yuzhen Zhao
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Abstract

Over the past decade, the extensive consumption of finite energy resources has caused severe environmental pollution. Meanwhile, the promotion of renewable energy sources is limited by their intermittent and regional nature. Thus, developing effective energy storage and conversion technologies and devices holds considerable importance. Zinc-ion hybrid supercapacitors (ZISCs) merge the beneficial aspects of both supercapacitors and batteries, rendering them an exceptionally promising energy storage method. As an important cathode material for ZISCs, the tunnel structure MnO2 has poor conductivity and structural stability. Herein, the ZnxMnO2/PPy (ZMOP) electrode materials are prepared by hydrothermal method. Doping with Zn2+ is used to enhance its structural stability, while adding polypyrrole to improve its conductivity. Therefore, the fabricated ZMOP cathode presents superb specific capacity (0.1 A g−1, 156.4 mAh g−1) and remarkable cycle performance (82.6%, 5000 cycles, 0.2 A g−1). Furthermore, the assembled aqueous ZISCs with ZMOP cathode and PPy-derived porous carbon nanotube anode obtain a superb capacity of 109 F g−1 at 0.1 A g−1. Meanwhile, at a power density of 867 W kg−1, the corresponding energy density can achieve 20 Wh kg−1. And over 5000 cycles at 0.2 A g−1, the cycle performance of ZISCs maintains at 86.4%, which exhibits excellent cycle stability. This suggests that ZMOP nanowires are potential cathode materials for superior-performance aqueous ZISCs.

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ZnxMnO2/PPy纳米线复合材料作为锌离子复合超级电容器正极材料
近十年来,有限能源的大量消耗造成了严重的环境污染。同时,可再生能源的间歇性和地域性也限制了可再生能源的推广。因此,开发有效的能量存储和转换技术和设备具有相当重要的意义。锌离子混合超级电容器(ZISCs)融合了超级电容器和电池的优点,使其成为一种非常有前途的储能方法。隧道结构MnO2作为ZISCs的重要正极材料,导电性差,结构稳定性差。本文采用水热法制备了ZnxMnO2/PPy (ZMOP)电极材料。掺杂Zn2+增强其结构稳定性,加入聚吡咯提高其导电性。因此,制备的ZMOP阴极具有优异的比容量(0.1 A g−1,156.4 mAh g−1)和出色的循环性能(82.6%,5000次循环,0.2 A g−1)。此外,由ZMOP阴极和py衍生的多孔碳纳米管阳极组成的水性ZISCs在0.1 a g−1下获得了109 F g−1的优异容量。同时,在功率密度为867 W kg−1时,对应的能量密度可达20 Wh kg−1。在0.2 A g−1下循环5000次,ZISCs的循环性能保持在86.4%,表现出良好的循环稳定性。这表明ZMOP纳米线是高性能水性ZISCs的潜在正极材料。
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Issue Information Cover Image, Volume 3, Issue 6, November 2024 Lithium Ion Batteries: Characteristics, Recycling and Deep-Sea Mining ZnxMnO2/PPy Nanowires Composite as Cathode Material for Aqueous Zinc-Ion Hybrid Supercapacitors Manipulation in the In Situ Growth Design Parameters of Aqueous Zinc-Based Electrodes for Batteries: The Fundamentals and Perspectives
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