物理化学学报 >> 2025, Vol. 41 >> Issue (5): 100040.doi: 10.1016/j.actphy.2024.100040

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原位电化学阻抗谱监测长寿命热电池Nb12WO33正极材料的高温双放电机制

邱领邦1, 蒋江民1,*(), 王李波1, 白浪1, 周飞1, 周羔宇1, 庄全超1,*(), 崔艳华2,*()   

  1. 1 中国矿业大学材料与物理学院, 江苏省高效储能技术与装备工程实验室, 江苏 徐州 221116
    2 中国工程物理研究院, 电子工程研究所, 四川 绵阳 621900
  • 收稿日期:2024-11-05 修回日期:2024-12-06 录用日期:2024-12-06 发布日期:2025-04-18
  • 通讯作者: Email: jiangmin326@163.com, Tel.: +86-15195899818 (蒋江民)zhuangquanchao@126.com, Tel.: +86-13605215324 (庄全超)cuiyanhua@netease.com, Tel.: +86-18890161718 (崔艳华)
  • 基金资助:
    国家自然科学基金(U2030206); 国家自然科学基金(22209204); 江苏省自然科学基金(BK20221140)

In Situ Electrochemical Impedance Spectroscopy Monitoring of the High-Temperature Double-Discharge Mechanism of Nb12WO33 Cathode Material for Long-Life Thermal Batteries

Lingbang Qiu1, Jiangmin Jiang1,*(), Libo Wang1, Lang Bai1, Fei Zhou1, Gaoyu Zhou1, Quanchao Zhuang1,*(), Yanhua Cui2,*()   

  1. 1 Jiangsu Province Engineering Laboratory of High Efficient Energy Storage Technology and Equipments, School of Materials and Physics, China University of Mining and Technology, Xuzhou 221116, Jiangsu Province, China
    2 Institute of Electronic Engineering, China Academy of Engineering Physics, Mianyang 621900, Sichuan Province, China
  • Received:2024-11-05 Revised:2024-12-06 Accepted:2024-12-06 Published:2025-04-18
  • Contact: Email: jiangmin326@163.com, Tel.: +86-15195899818 (Jiangmin Jiang)zhuangquanchao@126.com, Tel.: +86-13605215324 (Quanchao Zhuang)cuiyanhua@netease.com, Tel.: +86-18890161718 (Yanhua Cui)
  • Supported by:
    the National Natural Science Foundation of China(U2030206); the National Natural Science Foundation of China(22209204); the Natural Science Foundation of Jiangsu Province(BK20221140)

摘要:

热电池作为一种一次贮备电池,具有高比能、高功率密度等优势,然而开发高比容量与高热稳定性的新型正极材料以适应新时期的热电池需求仍然存在巨大的挑战。Wadsley-Roth晶体剪切结构的铌钨氧化物作为锂离子电池负极材料表现出优异的倍率和循环循环性,其中Nb12WO33因内部具有独特的3D隧道,可以为Li+提供快速的脱嵌通道,因而具有优异的储锂性能。鉴于其具有较好的热稳定性及电化学稳定性,本文首次提出将Nb12WO33作为热电池正极材料,并在室温下使用电化学阻抗谱(EIS)来探究材料内部电子电导率阻抗变化规律。研究发现Nb12WO33电极电化学阻抗谱测试的Nyquist图显示在工作平台电位范围内,高、中频区出现了三个圆弧的独特现象,这主要归属于电子在Nb12WO33电极内部的传导,而与电子电导相关的电阻呈现先增大后降低的规律。采用该材料构筑的热电池单体电池在500 ℃、500 mA·g−1的电流密度(截止电压1.5 V)下放电,其具有436.8 mAh·g−1的高比容量,脉冲放电的平均极化内阻为0.52 Ω。因此,Nb12WO33作为高比容量、高热稳定性热电池的正极材料非常具有潜力,本研究为其他铌钨氧化物作为热电池正极材料的研究开辟了新道路。

关键词: 热电池, 铌钨氧化物, 正极材料, 电化学阻抗谱, 弛豫时间分布

Abstract:

As a primary energy storage device, the thermal battery offers advantages such as high specific energy and high-power density. However, developing new cathode materials with high specific capacity and thermal stability to meet the evolving needs of thermal batteries remains a significant challenge. Moreover, the high discharge temperatures of thermal batteries and the instability of the molten salt electrolyte system complicate the electrochemical in situ characterization of these systems. In this context, in situ electrochemical impedance spectroscopy (EIS) has become widely employed in electrochemistry and represents a promising technique for in situ monitoring of thermal battery systems. Niobium-tungsten oxides, which possess a Wadsley-Roth crystal shear structure, exhibit excellent rate capability and cyclic stability as anode materials for lithium-ion batteries. Among them, Nb12WO33 demonstrates remarkable lithium storage performance due to its unique 3D tunneling structure, which provides rapid de-intercalation channels for Li+ ions. Given its excellent thermal and electrochemical stability, this study proposes the use of Nb12WO33 as a cathode material for thermal batteries for the first time. Electrochemical impedance spectroscopy (EIS) at room temperature was employed to investigate the variations in the material's internal electronic conductivity impedance. The EIS Nyquist plots of the Nb12WO33 electrode reveal a distinctive phenomenon of three semicircles in the high- and mid-frequency regions within the operating potential range. This behavior is primarily attributed to the electron conduction within the Nb12WO33 electrode. The resistance associated with electronic conduction (RE) exhibits a pattern of initial increase followed by a decrease. This phenomenon is explained by the valence transition of the Nb element from +5 to +4 occurring around 1.7 V. This step is more facile than the subsequent steps at 2.0 V and 1.2 V, resulting in the generation of a larger number of metastable electrons. Consequently, the internal channels become populated with electrons, leading to a significant increase in RE. The thermal battery constructed with Nb12WO33 as the cathode material was discharged at 500 ℃ and a current density of 500 mA·g−1 (with a cut-off voltage of 1.5 V), achieving a high specific capacity of 436.8 mAh·g−1 and an average polarized internal resistance of 0.52 Ω during pulse discharge. Therefore, Nb12WO33 holds great potential as a cathode material for high-capacity, thermally stable thermal batteries. This study paves the way for the use of other niobium-tungsten oxides as cathode materials for thermal batteries and establishes a precedent for in situ EIS testing and analysis of thermal battery systems.

Key words: Thermal battery, Niobium tungsten oxide, Cathode material, Electrochemical impedance spectroscopy, Distribution of relaxation time