Acta Phys. -Chim. Sin. ›› 2025, Vol. 41 ›› Issue (5): 100040.doi: 10.1016/j.actphy.2024.100040

• ARTICLE • Previous Articles     Next Articles

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)

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