Topological Phase Transition Induced by Image Potential States in MXenes: A Theoretical Investigation
Mengying Wang, Mohammad Khazaei, Yoshiyuki Kawazoe, Yunye Liang

TL;DR
This theoretical study shows that stacking OH-functionalized MXenes can induce topological phase transitions by modulating image potential states through interlayer distance adjustments.
Contribution
The paper reveals how stacking and interlayer distance control in OH-functionalized MXenes can induce topological phase transitions via image potential states, a novel mechanism.
Findings
Stacking multilayer MXenes can induce topological nontrivial states.
Interlayer distance modulates the energy of image potential states.
Band inversion involving IP states suggests topological phase transition.
Abstract
MXenes, a family of two-dimensional transition metal carbides and nitrides, have various tunable physical and chemical properties. Their diverse prospective applications in electronics and energy storage devices have triggered great interests in science and technology. MXenes can be functionalized by different surface terminations. Some O and F functionalized MXenes monolayers have been predicted to be topological insulators (TIs). However, the reported OH functionalized MXenes TIs are very few and their electronic structures need to be investigated in more detail. It has been revealed that the work functions of MXenes are reduced significantly by OH termination and the image potential (IP) states move close to the Fermi level. The wave functions of these IP states are spatially extensive outside the surfaces. By stacking the OH-functionalized MXenes, the energies of the IP states can…
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