Optimizing Topological Switching in Confined 2D-Xene Nanoribbons via Finite-Size Effects
Muhammad Nadeem, Chao Zhang, Dimitrie Culcer, Alex R. Hamilton,, Michael S. Fuhrer, Xiaolin Wang

TL;DR
This paper investigates how finite-size effects in zigzag-Xene nanoribbons influence topological switching, revealing that width-dependent properties enable low-voltage control of edge states without bulk gap closure, advancing topological electronics.
Contribution
It demonstrates that width-dependent quantum confinement effects allow topological switching in nanoribbons without bulk bandgap closing, offering new pathways for low-voltage topological device design.
Findings
Gapless edge states remain protected in ultra-narrow ribbons.
Threshold voltage decreases with decreasing ribbon width.
Topological switching can occur without bulk gap closure.
Abstract
In a blueprint for topological electronics, edge state transport in a topological insulator material can be controlled by employing a gate-induced topological quantum phase transition. Here, by studying the width dependence of electronic properties, it is inferred that zigzag-Xene nanoribbons are promising materials for topological electronics with a display of unique physical characteristics associated with the intrinsic band topology and the finite-size effects on gate-induced topological switching. First, due to intertwining with intrinsic band topology-driven energy-zero modes in the pristine case, spin-filtered chiral edge states in zigzag-Xene nanoribbons remain gapless and protected against backward scattering even with finite inter-edge overlapping in ultra-narrow ribbons, i.e., a 2D quantum spin Hall material turns into a 1D topological metal. Second, mainly due to width- and…
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