Hole dopants disentangling Peierls−Mott relevance states of VO2 by first-principles calculation

Chen Ling, Qianchen Wang, Xiaoqian Wang, Zhengjing Zhao, Zongguo Wang, Jingbo Li*, Yongjie Zhao, Haibo Jin*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

15 Citations (Scopus)

Abstract

The formation mechanism of the metastable M2phase VO2, which is believed to be a true Mott insulator, has attracted great attention for understanding the intriguing physics of the metal−insulator transition of VO2 and the promising application in ultrafast electronic switching devices. Herein, we conducted the hole-doping calculation regardless of the type of element and revealed theoretically that the hole carriers disentangle the complex Mott−Peierls relevance states of M1phase VO2. The hole induces the zigzag dimerized V−V chains to separate into two different states: one remains paired but straight and the other remains zigzag but unpaired. The dedimerization weakens the intradimer hopping, which makes the superexchange interaction come into effect, consequently resulting in the formation of the spin antiferromagnetic ordering along the zigzag unpaired V−V chains, indicating that the Mott correlation plays a dominant role in the formation of M2-VO2. This work gives an insight into the mechanism of stabilizing the “true” Mott insulator M2-VO2, which would offer an opportunity for the realization of Mott transition field-effect transistors.

Original languageEnglish
Pages (from-to)5816-5823
Number of pages8
JournalJournal of Physical Chemistry C
Volume125
Issue number10
DOIs
Publication statusPublished - 18 Mar 2021

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