Lithium Ion Transport Environment by Molecular Vibrations in Ion‐Conducting Glasses

Author:

Yamada Hiroki1,Ohara Koji12ORCID,Hiroi Satoshi12,Sakuda Atsushi3ORCID,Ikeda Kazutaka4ORCID,Ohkubo Takahiro5,Nakada Kengo1ORCID,Tsukasaki Hirofumi6ORCID,Nakajima Hiroshi6ORCID,Temleitner Laszlo7ORCID,Pusztai Laszlo78ORCID,Ariga Shunsuke5,Matsuo Aoto5,Ding Jiong6,Nakano Takumi3,Kimura Takuya3,Kobayashi Ryo9ORCID,Usuki Takeshi10ORCID,Tahara Shuta11,Amezawa Koji12ORCID,Tateyama Yoshitaka13ORCID,Mori Shigeo6,Hayashi Akitoshi3ORCID

Affiliation:

1. Diffraction and Scattering Division Japan Synchrotron Radiation Research Institute (JASRI) 1–1–1 Kouto, Sayo‐cho Sayo‐gun Hyogo 679‐5198 Japan

2. Faculty of Materials for Energy Shimane University 1060, Nishi‐Kawatsu‐Cho Matsue Shimane 690‐8504 Japan

3. Department of Applied Chemistry, Graduate School of Engineering Osaka Metropolitan University 1‐1 Gakuen‐cho, Sakai Osaka 599‐8531 Japan

4. Institute of Materials Structure Science High Energy Accelerator Research Organization (KEK) 203‐1 Shirakata, Tokai‐mura Naka‐gun Ibaraki 319‐1106 Japan

5. Graduate School of Engineering Chiba University 1‐33 Yayoi‐cho Inage‐ku Chiba 263‐8522 Japan

6. Department of Materials Science, Graduate School of Engineering Osaka Metropolitan University 1‐1 Gakuen‐cho, Sakai Osaka 599‐8531 Japan

7. Wigner Research Centre for Physics Konkoly Thege út 29‐33 H‐1121 Budapest Hungary

8. International Research Organisation of Advanced Science and Technology (IROAST) Kumamoto University 2‐39‐1 Kurokami, Chuo‐ku Kumamoto 860‐8555 Japan

9. Department of Applied Physics Nagoya Institute of Technology Gokiso, Showa Nagoya 466‐8555 Japan

10. Faculty of Science Yamagata University 1‐4‐12 Kojirakawa, Yamagata‐shi Yamagata 990‐5860 Japan

11. Faculty of Science University of the Ryukyus 1 Senbaru, Nishihara‐cho Okinawa 903‐0213 Japan

12. Institute of Multidisciplinary Research for Advanced Materials Tohoku University 2‐1‐1 Katahira, Aoba‐ku Sendai 980‐8577 Japan

13. Center for Green Research on Energy and Environmental Materials (GREEN) and International Center for Materials Nanoarchitectonics (MANA) National Institute for Materials Science (NIMS) Tsukuba Ibaraki 305‐0044 Japan

Abstract

Controlling Li ion transport in glasses at atomic and molecular levels is key to realizing all‐solid‐state batteries, a promising technology for electric vehicles. In this context, Li3PS4 glass, a promising solid electrolyte candidate, exhibits dynamic coupling between the Li+ cation mobility and the PS43− anion libration, which is commonly referred to as the paddlewheel effect. In addition, it exhibits a concerted cation diffusion effect (i.e., a cation–cation interaction), which is regarded as the essence of high Li ion transport. However, the correlation between the Li+ ions within the glass structure can only be vaguely determined, due to the limited experimental information that can be obtained. Here, this study reports that the Li ions present in glasses can be classified by evaluating their valence oscillations via Bader analysis to topologically analyze the chemical bonds. It is found that three types of Li ions are present in Li3PS4 glass, and that the more mobile Li ions (i.e., the Li3‐type ions) exhibit a characteristic correlation at relatively long distances of 4.0–5.0 Å. Furthermore, reverse Monte Carlo simulations combined with deep learning potentials that reproduce X‐ray, neutron, and electron diffraction pair distribution functions showed an increase in the number of Li3‐type ions for partially crystallized glass structures with improved Li ion transport properties. Our results show order within the disorder of the Li ion distribution in the glass by a topological analysis of their valences. Thus, considering the molecular vibrations in the glass during the evaluation of the Li ion valences is expected to lead to the development of new solid electrolytes.

Funder

Japan Society for the Promotion of Science

Publisher

Wiley

Subject

Energy (miscellaneous),Waste Management and Disposal,Environmental Science (miscellaneous),Water Science and Technology,General Materials Science,Renewable Energy, Sustainability and the Environment

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