Persistent currents in mesoscopic spin-orbit coupled rings due to an applied Zeeman field
Bijay Kumar Sahoo, Subroto Mukerjee, Abhiram Soori

TL;DR
This paper investigates how persistent currents in mesoscopic spin-orbit coupled rings are influenced by Zeeman fields and disorder, revealing size dependence, disorder effects, and spin current behaviors.
Contribution
It provides a theoretical analysis of persistent currents driven by Zeeman fields in spin-orbit coupled rings, highlighting effects of disorder and noncollinear fields, which are novel compared to flux-driven currents.
Findings
Persistent currents inversely proportional to system size in ballistic rings.
Disorder suppresses persistent currents with exponential and quadratic decay.
Disorder can enhance persistent currents in individual samples.
Abstract
Persistent currents (PCs) in mesoscopic rings have been a subject of intense investigation since their proposal by B\"uttiker, Landauer, and Imry in 1983. In this paper, we explore the behavior of PC in spin-orbit coupled rings under the influence of a Zeeman field (without a need for a flux threading the ring), contrasting it with traditional PC observed in rings threaded by magnetic flux. Our study reveals that the emergence of PC in our setup crucially depends on nonzero values of spin-orbit coupling and the Zeeman field. Through theoretical analysis and numerical calculations, we uncover several intriguing phenomena. Specifically, in ballistic rings, we observe an inverse proportionality between PC and system size, with PC being zero at half filling for even numbers of sites. Additionally, the introduction of on-site disorder leads to the suppression of PC, with exponential decay…
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Taxonomy
TopicsQuantum and electron transport phenomena · Cold Atom Physics and Bose-Einstein Condensates · Quantum optics and atomic interactions
