Revealing the role of high-valence elementary substitution in the hydrogen-induced Mottronic transitions of vanadium dioxide

Author:

Zhou Xuanchi1ORCID,Shang Yanlong1,Gu Zhijie2,Jiang Guangzhong2ORCID,Ozawa Takahiro2ORCID,Mao Wei23,Fukutani Katsuyuki24ORCID,Matsuzaki Hiroyuki35,Jiang Yong1ORCID,Chen Nuofu6ORCID,Chen Jikun1ORCID

Affiliation:

1. School of Materials Science and Engineering, University of Science and Technology Beijing 1 , Beijing 100083, China

2. Institute of Industrial Science, The University of Tokyo 2 , 4-6-1 Komaba, Meguro-ku, Tokyo 153-8505, Japan

3. School of Engineering, The University of Tokyo 3 , Bunkyo-Ku, Yayoi 2-11-16, Tokyo 113-0032, Japan

4. Advanced Science Research Center, Japan Atomic Energy Agency (JAEA) 4 , Naka, Ibaraki 319-1195, Japan

5. The Micro Analysis Laboratory, Tandem Accelerator, The University Museum, The University of Tokyo 5 , 2-11-16 Yayoi, Bunkyo-ku, Tokyo 113-0032, Japan

6. School of Renewable Energy, North China Electric Power University 6 , Beijing 102206, China

Abstract

Electron-doping Mottronics within correlated vanadium dioxide (e.g., VO2) opens up a paradigm to abruptly regulate the Mottronic phase transitions via adjusting the d-orbital occupancy and configuration. Nevertheless, the potential impact of high-valence elementary substitution in the hydrogen-associated Mottronic transitions of VO2 is yet unclear. Herein, we demonstrate the role of high-valence elementary substitution (e.g., W6+) in regulating the hydrogen-triggered Mottronic transitions of VO2, assisted by quantitative hydrogen analysis using the nuclear reaction analysis. Substituting vanadium with a high-valence transitional metal (e.g., W6+) within doped-VO2 largely reduces the hydrogen incorporation (e.g., ∼1.61 × 1021 cm−3 in H0.06V0.95W0.05O2) compared to the intrinsic VO2 (e.g., ∼1.08 × 1022 cm−3 in H0.35VO2) under the low temperature hydrogenation process. Therefore, in contrast to hydrogen-induced electron localization of intrinsic VO2 upon low-temperature hydrogenation, only the hydrogen-triggered metallic state is observed within the hydrogen-associated phase diagram of WxV1-xO2, as further probed by the near-edge x-ray absorption fine structure analysis and x-ray photoelectron spectroscopy. The present work reveals the overlooked role associated with the donor substitutions that largely influences the competitive equilibrium between the two rival hydrogen-induced Mottronic transitions within VO2 toward either the metallic or the highly insulating phase.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Japan Society for the Promotion of Science

Publisher

AIP Publishing

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