储能科学与技术 ›› 2022, Vol. 11 ›› Issue (11): 3455-3462.doi: 10.19799/j.cnki.2095-4239.2022.0245

• 储能材料与器件 • 上一篇    下一篇

高容量铬氧化物Cr8O21 锂一次电池正极材料的制备与性能

滕久康(), 吴宁宁, 王畅, 王庆杰(), 石斌   

  1. 贵州梅岭电源有限公司,特种化学电源国家重点实验室,贵州 遵义 563003
  • 收稿日期:2022-05-09 修回日期:2022-05-26 出版日期:2022-11-05 发布日期:2022-11-09
  • 通讯作者: 王庆杰 E-mail:jiukangteng@163.com;wqj3401@163.com
  • 作者简介:滕久康(1997—),男,硕士,工程师,研究方向为化学电源研发,E-mail:jiukangteng@163.com

Preparation and electrochemical performance of high capacity chromium oxide Cr8O21 cathode materials for lithium primary batteries

Jiukang TENG(), Ningning WU, Chang WANG, Qingjie WANG(), Bin SHI   

  1. Guizhou Meiling Power Sources Co. Ltd, State Key Laboratory of Advanced Chemical Power Sources, Zunyi 563003, Guizhou, China
  • Received:2022-05-09 Revised:2022-05-26 Online:2022-11-05 Published:2022-11-09
  • Contact: Qingjie WANG E-mail:jiukangteng@163.com;wqj3401@163.com

摘要:

本工作以CrO3前体为原料,采用高温固相法制备高性能的Cr8O21材料,探究了热解温度对Cr8O21性能的影响,并详细分析Cr8O21的首次放电机理。借助X射线衍射技术(XRD)、扫描电子显微技术(SEM)、X射线光电子能谱分析技术(XPS)和电化学技术等表征测试手段,对比分析了不同热解温度下制得的样品结晶度、形貌和电化学性能,并阐明了放电机理。结果表明,热解温度270 ℃下制备的Cr8O21样品结晶度最高、放电性能优异。在0.05 mA/cm2下放电比容量达到419 mAh/g,平均电压2.99 V;在1.0 mA/cm2下放电比容量达到315 mAh/g,平均电压2.82 V;容量保持率75.11%,电化学性能高于其他温度下制得的Cr8O21样品。热解温度低于270 ℃,CrO3前体反应不充分;热解温度高于270 ℃,会生成杂相。XPS结果显示,Cr8O21中Cr元素只含+3价和+6价,不存在其他价态。Cr8O21首次放电机理为:从3.5 V放电至3.0 V,为锂离子嵌入Cr8O21内部的过程;从3.0 V放电至结束,为锂离子与Cr8O21反应生成LiCrO2和高度不可逆的Li2O的过程。本研究有助于推动高容量的Cr8O21材料在锂一次电池领域的应用,为高比能一次电池技术的研发提供实验依据。

关键词: Cr8O21, 锂一次电池, 正极材料, 热解温度, LiCrO2

Abstract:

High-performance Cr8O21 materials were prepared using a high-temperature solid-phase method to pyrolyse a CrO3 precursor. The effect of pyrolysis temperature on the properties of Cr8O21 was explored, and the first discharge mechanism of Cr8O21 was analyzed. Using X-ray diffraction, scanning electron microscopy, X-ray photoelectron spectroscopy (XPS), and electrochemical techniques, the crystallization degree, morphology, and electrochemical performance of samples prepared at different pyrolysis temperatures were compared and analyzed, and the discharge mechanism was elucidated. The results showed that among the samples, the Cr8O21 sample prepared at 270 ℃ has the highest crystallinity and an excellent discharge performance. At 0.05 mA/cm2, the discharge specific capacity reached 419 mAh/g with an average voltage of 2.99 V. At 1.0 mA/cm2, the discharge specific capacity reached 315 mAh/g with an average voltage of 2.82 V. The capacity retention rate was 75.11%. Furthermore, the electrochemical performance of this sample is higher than that of Cr8O21 samples prepared at other temperatures. When the pyrolysis temperature is lower than 270 ℃, the reaction of the CrO3 precursor is insufficient. When the pyrolysis temperature is higher than 270 ℃, the impurity phase will be formed. The XPS results showed that the Cr element in Cr8O21 only contains +3 and +6 valence, and no other valence states exist. The first discharge mechanism of Cr8O21 is as follows: from 3.5 V to 3.0 V, lithium ion intercalates inside Cr8O21, and from 3.0 V to the end, lithium ion reacts with Cr8O21 to generate LiCrO2 and highly irreversible Li2O. This study helps to promote the application of high-capacity Cr8O21 materials in lithium primary batteries and provides an experimental basis for the research and development of high specific energy primary battery techniques.

Key words: Cr8O21, lithium primary batteries, cathode material, heating temperature, LiCrO2

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