Proximity-induced gapless superconductivity in two-dimensional Rashba
semiconductor in magnetic field
- URL: http://arxiv.org/abs/2311.09347v2
- Date: Mon, 11 Mar 2024 14:49:51 GMT
- Title: Proximity-induced gapless superconductivity in two-dimensional Rashba
semiconductor in magnetic field
- Authors: Serafim S. Babkin, Andrew P. Higginbotham, and Maksym Serbyn
- Abstract summary: We introduce a theoretical model describing a disordered semiconductor with strong spin-orbit coupling.
Our model provides predictions for the density of states and superfluid density.
Our model can be used to probe in-situ parameters of other superconductor-semiconductor heterostructures.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Two-dimensional semiconductor-superconductor heterostructures form the
foundation of numerous nanoscale physical systems. However, measuring the
properties of such heterostructures, and characterizing the semiconductor
in-situ is challenging. A recent experimental study [arXiv:2107.03695] was able
to probe the semiconductor within the heterostructure using microwave
measurements of the superfluid density. This work revealed a rapid depletion of
superfluid density in semiconductor, caused by the in-plane magnetic field
which in presence of spin-orbit coupling creates so-called Bogoliubov Fermi
surfaces. The experimental work used a simplified theoretical model that
neglected the presence of non-magnetic disorder in the semiconductor, hence
describing the data only qualitatively. Motivated by experiments, we introduce
a theoretical model describing a disordered semiconductor with strong
spin-orbit coupling that is proximitized by a superconductor. Our model
provides specific predictions for the density of states and superfluid density.
Presence of disorder leads to the emergence of a gapless superconducting phase,
that may be viewed as a manifestation of Bogoliubov Fermi surface. When applied
to real experimental data, our model showcases excellent quantitative
agreement, enabling the extraction of material parameters such as mean free
path and mobility, and estimating $g$-tensor after taking into account the
orbital contribution of magnetic field. Our model can be used to probe in-situ
parameters of other superconductor-semiconductor heterostructures and can be
further extended to give access to transport properties.
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