Driven quantum spin chain in the presence of noise: Anti-Kibble-Zurek behavior
Manvendra Singh, Suhas Gangadharaiah

TL;DR
This paper investigates how fast Gaussian noise affects defect formation in a driven quantum XY-spin chain, revealing an anti-Kibble-Zurek scaling behavior in the slow sweep regime and analyzing the impact on correlations and entropy.
Contribution
It analytically and numerically demonstrates the emergence of anti-Kibble-Zurek scaling due to noise in a quantum spin chain during slow driving, extending understanding of decoherence effects.
Findings
Defect density exhibits anti-Kibble-Zurek scaling in the presence of noise.
Correlation length scales according to AKZ behavior under noise.
Magnetization correlators show different scaling from sub-lattice correlators.
Abstract
We study defect generation in a quantum XY-spin chain arising due to the linear drive of the many-body Hamiltonian in the presence of a time-dependent fast Gaussian noise. The main objective of this work is to quantify analytically the effects of noise on the defect density production. In the absence of noise, it is well known that in the slow sweep regime, the defect density follows the Kibble-Zurek (KZ) scaling behavior with respect to the sweep speed. We consider time-dependent fast Gaussian noise in the anisotropy of the spin-coupling term [] and show via analytical calculations that the defect density exhibits anti-Kibble-Zurek (AKZ) scaling behavior in the slow sweep regime. In the limit of large chain length and long time, we calculate the entropy and magnetization density of the final decohered state and show that their scaling behavior is…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
