Controlled probing of localization effects in the non-Hermitian Aubry-Andr\'e model via topolectrical circuits
Dipendu Halder, Saurabh Basu

TL;DR
This paper explores the interplay between Anderson localization and the non-Hermitian skin effect in a non-Hermitian Aubry-Andre9 model, using theoretical analysis and topolectrical circuit experiments to demonstrate controllable eigenstate confinement.
Contribution
It introduces a method to control localization phenomena in a non-Hermitian Aubry-Andre9 model through circuit design, combining theoretical predictions with experimental topolectrical circuit implementation.
Findings
Controlled localization via complex phase of disorder
Observation of skin effect and Anderson localization in circuits
Spatially tunable voltage confinement in topolectrical circuits
Abstract
Anderson localization and the non-Hermitian skin effect are two distinct confinement phenomena of the eigenfunctions that are driven, respectively, by disorder and nonreciprocity. Understanding their interplay within a unified framework offers valuable insights into the localization properties of low-dimensional systems. To this end, we investigate a non-Hermitian version of the celebrated Aubry-Andr\'e model, which serves as an ideal platform due to its unique self-dual properties and ability to demonstrate a delocalization-localization transition in one dimension. Interestingly, in our setting, the competition between Anderson localization and the skin effect can be precisely controlled via the complex phase of the quasiperiodic disorder. Additionally, by analyzing the time evolution, we demonstrate that quantum jumps between the skin states and the Anderson-localized states occur in…
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