Reverse quenching in a one-dimensional Kitaev model
Uma Divakaran, Amit Dutta

TL;DR
This paper provides an exact analysis of non-adiabatic transitions in a 1D Kitaev model during reverse quenching, revealing reduced defect density and different excitation behavior compared to forward quenching.
Contribution
It introduces an exact solution for reverse quenching in a Kitaev chain and compares it with forward quenching, highlighting unique defect and entropy dynamics.
Findings
Zero excitation probability at the critical wave vector during reverse quenching.
Nearly half the defect density in reverse quenching compared to forward quenching.
Redistribution of defects in wave vector space during reverse quenching.
Abstract
We present an exact result for the non-adiabatic transition probability and hence the defect density in the final state of a one-dimensional Kitaev model following a slow quench of the parameter , which estimates the anisotropy between the interactions, as . Here, time goes from to and defines the rate of change of the Hamiltonian. In other words, the spin chain initially prepared in its ground state is driven by changing linearly in time up to the quantum critical point, which in the model considered here occurs at at , reversed and then gradually decreased to its initial value at the same rate. We have thoroughly compared the reverse quenching with its counterpart forward quenching . Our exact calculation shows that the probability of excitations is zero for the wave vector at which the…
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