Gate-Induced Massive and Reversible Phase Transition of VO2 Channels Using Solid-State Proton Electrolytes
SCIE
SCOPUS
- Title
- Gate-Induced Massive and Reversible Phase Transition of VO2 Channels Using Solid-State Proton Electrolytes
- Authors
- Jo, Minguk; Lee, Hyeon Jun; Oh, Chadol; Yoon, Hyojin; Jo, Ji Young; Son, Junwoo
- Date Issued
- 2018-09
- Publisher
- WILEY-V C H VERLAG GMBH
- Abstract
- The use of gate bias to control electronic phases in VO2, an archetypical correlated oxide, offers a powerful method to probe their underlying physics, as well as for the potential to develop novel electronic devices. Up to date, purely electrostatic gating in 3-terminal devices with correlated channel shows the limited electrostatic gating efficiency due to insufficiently induced carrier density and short electrostatic screening length. Here massive and reversible conductance modulation is shown in a VO2 channel by applying gate bias V-G at low voltage by a solid-state proton (H+) conductor. By using porous silica to modulate H+ concentration in VO2, gate-induced reversible insulator-to-metal (I-to-M) phase transition at low voltage, and unprecedented two-step insulator-to-metal-to-insulator (I-to-M-to-I) phase transition at high voltage are shown. V-G strongly and efficiently injects H+ into the VO2 channel without creating oxygen deficiencies; this H+-induced electronic phase transition occurs by giant modulation (approximate to 7%) of out-of-plane lattice parameters as a result of H+-induced chemical expansion. The results clarify the role of H+ on the electronic state of the correlated phases, and demonstrate the potentials for electronic devices that use ionic/electronic coupling.
- URI
- https://oasis.postech.ac.kr/handle/2014.oak/95662
- DOI
- 10.1002/adfm.201802003
- ISSN
- 1616-301X
- Article Type
- Article
- Citation
- ADVANCED FUNCTIONAL MATERIALS, vol. 28, no. 39, 2018-09
- Files in This Item:
- There are no files associated with this item.
Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.