Hysteresis and jumps in the I-V curves of disordered two-dimensional materials
Shahar Kasirer, Yigal Meir

TL;DR
This paper introduces a modified array model with finite relaxation time to explain hysteresis and jumps in the I-V curves of disordered 2D materials near the superconductor-insulator transition, aligning better with experimental observations.
Contribution
It presents a new array model incorporating finite relaxation time, successfully reproducing hysteresis and multiple jumps in I-V curves of disordered 2D materials.
Findings
Model reproduces hysteresis in I-V curves
Finite relaxation time is key to observed jumps
Results align with experimental data
Abstract
The superconductor-insulator transition (SIT) in thin-film disordered superconductors is a hallmark example of a quantum phase transition. Despite being observed more than 30 years ago, its nature is still under a vivid debate. One intriguing observations concerns the insulating side of the transition, which exhibits some unusual properties. Among them is its current-voltage relation ( curve), which includes (1) a conductance that changes abruptly by several orders of magnitude with increasing voltage, (2) hysteretic behavior, and (3) multiple (sometimes more than a hundred) smaller current jumps near the transition. Some models have been suggested before, but no model has been successful in accounting for the observed behavior in full. One commonly used approach is to model the disordered sample as a two-dimensional array of conducting islands, where charge carriers tunnel from…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Electronic and Structural Properties of Oxides · Surface and Thin Film Phenomena
