Low-temperature, low-pressure Zn-ion hybrid supercapacitor in extreme near-space application.

IF 12.2 2区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Weijia Liu, Haiqing Liu, Yin Sun, Zhiyi Gao, La Li, Guozhen Shen
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引用次数: 0

Abstract

The development and utilization of airspace, especially near-space particularly rely on power units with superior tolerance in low-temperature and low-pressure environments to output a stable energy supply. Here we propose a strategy towards low-temperature, low-pressure Zn-ion hybrid supercapacitor based on a weakly hydrogen-bonded electrolyte and a hyacinth-shaped Ti2CTx MXene@CC cathode with hierarchical bridge-linked structure, which synergistically reduces the internal resistance of the device and enables the assembled supercapacitor showing a good low-temperature resistance while combining low-gas-voltage safety. The ACN additive weakens the hydrogen bond between water molecules and reshapes the solvation structure of Zn2+, thus reducing the ion transfer resistance and achieving a reversible Zn/Zn2+ chemical reaction. The bridge-linked hierarchical structure of the hyacinth-shaped Ti2CTx MXene@CC cathode provides a rich conductive network and optimizes the ion diffusion path, which reduces the ion diffusion resistance. At -40 °C, the assembled device can still achieve an area specific capacitance of 64.0 mF cm-2 at a scan rate of 500 mV s-1, and long-term stability after 20 000 cycles at a current density of 20 mA cm-2. An integrated temperature and pressure sensing system driven by the supercapacitor successfully realizes the monitoring of atmospheric indicators in extreme environments, providing new ideas for auxiliary power units in airspace and near-space.

低温,低压锌离子混合超级电容器在极端近空间应用。
空间特别是近空间的开发和利用,尤其需要在低温低压环境下具有优异耐受性的动力装置输出稳定的能量供应。本文提出了一种基于弱氢键电解质和层次化桥联结构的风信子形Ti2CTx MXene@CC阴极的低温低压锌离子杂化超级电容器策略,该策略协同降低了器件的内阻,使组装的超级电容器具有良好的耐低温性能,同时结合了低气体电压的安全性。ACN添加剂削弱了水分子间的氢键,重塑了Zn2+的溶剂化结构,从而降低了离子转移阻力,实现了可逆的Zn/Zn2+化学反应。风信子状Ti2CTx MXene@CC阴极的桥联分层结构提供了丰富的导电网络,优化了离子扩散路径,降低了离子扩散阻力。在-40℃下,组装后的器件在500 mV s-1的扫描速率下仍能实现64.0 mF cm-2的区域比电容,在20 mA cm-2的电流密度下,在2万次循环后仍能实现长期稳定。由超级电容器驱动的集成温度压力传感系统成功实现了极端环境下大气指标的监测,为空域和近空间辅助动力装置提供了新的思路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Materials Horizons
Materials Horizons CHEMISTRY, MULTIDISCIPLINARY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
18.90
自引率
2.30%
发文量
306
审稿时长
1.3 months
期刊介绍: Materials Horizons is a leading journal in materials science that focuses on publishing exceptionally high-quality and innovative research. The journal prioritizes original research that introduces new concepts or ways of thinking, rather than solely reporting technological advancements. However, groundbreaking articles featuring record-breaking material performance may also be published. To be considered for publication, the work must be of significant interest to our community-spanning readership. Starting from 2021, all articles published in Materials Horizons will be indexed in MEDLINE©. The journal publishes various types of articles, including Communications, Reviews, Opinion pieces, Focus articles, and Comments. It serves as a core journal for researchers from academia, government, and industry across all areas of materials research. Materials Horizons is a Transformative Journal and compliant with Plan S. It has an impact factor of 13.3 and is indexed in MEDLINE.
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