Mukhan Orynbassar, Yun Ji-Su, Munakata Hirokazu, Kanamura Kiyoshi, Kim Sung-Soo
Graduate School of Energy Science and Technology, Chungnam National University, 99 Daehak-ro, Yuseong-gu, Daejeon 34134, Republic of Korea.
Department of Applied Chemistry, Graduate School of Urban Environmental Science, Tokyo Metropolitan University, 1-1 Minami-ohsawa, Hachioji, Tokyo 192-0397, Japan.
ACS Omega. 2024 Jan 8;9(3):4004-4012. doi: 10.1021/acsomega.3c08681. eCollection 2024 Jan 23.
The effect of carbon coating on the interfacial charge transfer resistance of natural graphite (NG) was investigated by a single-particle measurement. The microscale carbon-coated natural graphite (NG@C) particles were synthesized by the simple wet-chemical mixing method using a phenolic resin as the carbon source. The electrochemical test results of NG@C using the conventional composite electrodes demonstrated desirable rate capability, cycle stability, and enhanced kinetic property. Moreover, the improvements in the composite electrodes were confirmed with the electrochemical parameters (i.e., charge transfer resistance, exchange current density, and solid phase diffusion coefficient) analyzed by a single-particle measurement. The surface carbon coating on the NG particles reduced the interfacial charge transfer resistance () and increased the exchange current density (). The decreased from 81-101 (NG) to 49-67 Ω cm (NG@C), while increased from 0.25-0.32 (NG) to 0.38-0.52 mA cm (NG@C) after the coating process. The results suggested both electrochemically and quantitatively that the outer uniformly coated surface carbon layer on the graphite particles can improve the solid-liquid interface and other kinetic parameters, therefore enhancing the rate capabilities to obtain the high-power anode materials.
通过单颗粒测量研究了碳包覆对天然石墨(NG)界面电荷转移电阻的影响。采用酚醛树脂作为碳源,通过简单的湿化学混合方法合成了微米级碳包覆天然石墨(NG@C)颗粒。使用传统复合电极对NG@C进行的电化学测试结果表明,其具有理想的倍率性能、循环稳定性和增强的动力学性能。此外,通过单颗粒测量分析的电化学参数(即电荷转移电阻、交换电流密度和固相扩散系数)证实了复合电极的改善。NG颗粒表面的碳包覆降低了界面电荷转移电阻()并提高了交换电流密度()。包覆后,从81 - 101(NG)降至49 - 67 Ω·cm(NG@C),而从0.25 - 0.32(NG)增加到0.38 - 0.52 mA·cm(NG@C)。结果从电化学和定量两方面表明,石墨颗粒表面均匀包覆的外层碳层可以改善固液界面和其他动力学参数,从而提高倍率性能以获得高功率负极材料。