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Dynamic Manipulation of Non-Hermitian Skin Effect through Frequency in Topolectrical Circuits
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One of the most fascinating phenomena in non-Hermitian systems is the extensive accumulation of the bulk eigenstates under open-boundary conditions which is known as the non-Hermitian skin effect (NSHE). Here, we propose a switchable NHSE in a topolectrical (TE) set-up which can be turned on or off simply by varying the driving frequency without any modification to the physical circuit. Specifically, we consider a coupled system consisting of two non-Hermitian Hatano-Nelson chains where each node of one chain is connected to neighboring node of the other chain via resistive couplings with opposite signs for the two coupling directions. Interestingly, the NHSE is switched on only if the driving frequency is greater than a certain critical frequency. Conversely, the NHSE in the coupled system is switched off when the frequency falls below the critical value, even though the individual uncoupled chains still exhibit the NHSE. This frequency-controlled NHSE may pave the way for many possible applications including non-Hermitian sensors where the driving frequency can manipulate the current and voltage localization.
Forward citations
Cited by 3 Pith papers
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Reconfigurable Defect States in Non-Hermitian Topolectrical Chains with Gain and Loss
In a non-Hermitian SSH chain with non-reciprocal hopping, staggered gain/loss tunes defect-state localization between the defect site, the chain edges, or suppression.
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On the non-hermitian Kitaev chain
The non-Hermitian Kitaev chain is solved in the thermodynamic limit, giving the eigenvalue curves, the exact zero-mode condition, and the skin-effect criteria.
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Controlled probing of localization effects in the non-Hermitian Aubry-Andr\'e model via topolectrical circuits
A complex phase in the quasiperiodic potential of a non-Hermitian Aubry-André chain controls whether eigenstates sit at an interface (skin effect) or near the excitation site (Anderson localization), and a topolectric...
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