Persistent current in a non-Hermitian Hatano-Nelson ring: Disorder-induced amplification
Sudin Ganguly, Santanu K. Maiti

TL;DR
This paper explores how non-Hermitian effects and disorder influence persistent currents in a Hatano-Nelson ring, revealing disorder-induced amplification and distinct current behaviors on different bonds.
Contribution
It introduces a detailed analysis of persistent currents in disordered non-Hermitian rings, highlighting disorder-induced amplification and bond-specific current characteristics.
Findings
Real and imaginary persistent currents can be amplified by correlated disorder.
In certain configurations, disorder effects vanish after averaging.
Intradimer bonds host only imaginary currents, interdimer bonds only real currents.
Abstract
Non-reciprocal hopping induces a synthetic magnetic flux which leads to the non-Hermitian Aharonov-Bohm effect. Since non-Hermitian Hamiltonians possess both real and imaginary eigenvalues, this effect allows the observation of real and imaginary persistent currents in a ring threaded by the synthetic flux. Motivated by this, we investigate the behavior of persistent currents in a disordered Hatano-Nelson ring with anti-Hermitian intradimer hopping. The disorder is diagonal and we explore three distinct models, namely the Aubry-Andr\'{e}-Harper model, the Fibonacci model, both representing correlated disorder, and an uncorrelated (random) model. We conduct a detailed analysis of the energy spectrum and examine the real and imaginary parts of the persistent current under various conditions such as different ring sizes and filling factors. Interestingly, we find that real and imaginary…
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Taxonomy
TopicsCrystallography and molecular interactions · Protein Structure and Dynamics · Molecular spectroscopy and chirality
