研究者業績

中西 康次

ナカニシ コウジ  (NAKANISHI KOJI)

基本情報

所属
兵庫県立大学 高度産業科学技術研究所 准教授
学位
理学博士(立命館大学)

J-GLOBAL ID
201001078456616125
researchmap会員ID
6000023989

研究キーワード

 1

受賞

 3

論文

 86
  • 中西康次
    X線分析の進歩55 / 日本分析化学会X線分析研究懇談会 編 55 135-143 2024年3月31日  査読有り筆頭著者責任著者
  • Hidenori Miki, Kentaro Yamamoto, Hiroyuki Nakaki, Takahiro Yoshinari, Koji Nakanishi, Shinji Nakanishi, Hideki Iba, Jun Miyawaki, Yoshihisa Harada, Akihide Kuwabara, Yanchang Wang, Toshiki Watanabe, Toshiyuki Matsunaga, Kazuhiko Maeda, Hiroshi Kageyama, Yoshiharu Uchimoto
    Journal of the American Chemical Society 2024年1月9日  査読有り
  • Yuya Torii, Yukiko Matsui, Kentaro Yamamoto, Satoshi Uchida, Shigeaki Yamazaki, Toshiki Watanabe, Koji Nakanishi, Tomoki Uchiyama, Yoshiharu Uchimoto, Masashi Ishikawa
    The Journal of Physical Chemistry C 2023年7月26日  査読有り
  • Kentaro Yamamoto, Yao Xiao, Toshiki Watanabe, Atsushi Sakuda, Masakuni Takahashi, Wenli Pan, Koji Nakanishi, Toshiyuki Matsunaga, Masayuki Uesugi, Akihisa Takeuchi, Kentaro Uesugi, Akitoshi Hayashi, Masahiro Tatsumisago, Yoshiharu Uchimoto
    The Journal of Physical Chemistry C 2023年7月21日  査読有り
  • Nur Chamidah, Akito Suzuki, Takeshi Shimizu, Chengchao Zhong, Keiji Shimoda, Ken-Ichi Okazaki, Toyonari Yaji, Koji Nakanishi, Motoaki Nishijima, Hajime Kinoshita, Yuki Orikasa
    RSC advances 13(25) 17114-17120 2023年6月5日  査読有り
    Silicon has been considered to be one of the most promising anode active materials for next-generation lithium-ion batteries due to its large theoretical capacity (4200 mA h g-1, Li22Si5). However, silicon anodes suffer from degradation due to large volume expansion and contraction. To control the ideal particle morphology, an experimental method is required to analyze anisotropic diffusion and surface reaction phenomena. This study investigates the anisotropy of the silicon-lithium alloying reaction using electrochemical measurements and Si K-edge X-ray absorption spectroscopy on silicon single crystals. During the electrochemical reduction process in lithium-ion battery systems, the continuous formation of solid electrolyte interphase (SEI) films prevents the achievement of steady-state conditions. Instead, the physical contact between silicon single crystals and lithium metals can prevent the effect of SEI formation. The apparent diffusion coefficient and the surface reaction coefficient are determined from the progress of the alloying reaction analyzed by X-ray absorption spectroscopy. While the apparent diffusion coefficients show no clear anisotropy, the apparent surface reaction coefficient of Si (100) is more significant than that of Si (111). This finding indicates that the surface reaction of silicon governs the anisotropy of practical lithium alloying reaction for silicon anodes.

MISC

 194

書籍等出版物

 3

講演・口頭発表等

 2

共同研究・競争的資金等の研究課題

 2