A Reconfigurable Remotely Epitaxial VO<sub>2</sub> Electrical Heterostructure.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 31769995.
- Also identified by DOI 10.1021/acs.nanolett.9b02696.
- No licence information is recorded for this record.
- Because redistribution is not established, this page shows the abstract only. Follow the links below for the full text.
Abstract
The reconfigurability of the electrical heterostructure featured with external variables, such as temperature, voltage, and strain, enabled electronic/optical phase transition in functional layers has great potential for future photonics, computing, and adaptive circuits. VO<sub>2</sub> has been regarded as an archetypal phase transition building block with superior metal-insulator transition characteristics. However, the reconfigurable VO<sub>2</sub>-based heterostructure and the associated devices are rare due to the fundamental challenge in integrating high-quality VO<sub>2</sub> in technologically important substrates. In this report, for the first time, we show the remote epitaxy of VO<sub>2</sub> and the demonstration of a vertical diode device in a graphene/epitaxial VO<sub>2</sub>/single-crystalline BN/graphite structure with VO<sub>2</sub> as a reconfigurable phase-change material and hexagonal boron nitride (h-BN) as an insulating layer. By diffraction and electrical transport studies, we show that the remote epitaxial VO<sub>2</sub> films exhibit higher structural and electrical quality than direct epitaxial ones. By high-resolution transmission electron microscopy and Cs-corrected scanning transmission electron microscopy, we show that a graphene buffered substrate leads to a less strained VO<sub>2</sub> film than the bare substrate. In the reconfigurable diode, we find that the Fermi level change and spectral weight shift along with the metal-insulator transition of VO<sub>2</sub> could modify the transport characteristics. The work suggests the feasibility of developing a single-crystalline VO<sub>2</sub>-based reconfigurable heterostructure with arbitrary substrates and sheds light on designing novel adaptive photonics and electrical devices and circuits.