Exposing the odd-parity superconductivity in CeRh$_2$As$_2$ with hydrostatic pressure

Fuente: arXiv
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Main Authors: Semeniuk, Konstantin, Pfeiffer, Meike, Landaeta, Javier F., Nicklas, Michael, Geibel, Christoph, Brando, Manuel, Khim, Seunghyun, Hassinger, Elena
Format: Preprint
Published: 2023
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author Semeniuk, Konstantin
Pfeiffer, Meike
Landaeta, Javier F.
Nicklas, Michael
Geibel, Christoph
Brando, Manuel
Khim, Seunghyun
Hassinger, Elena
author_facet Semeniuk, Konstantin
Pfeiffer, Meike
Landaeta, Javier F.
Nicklas, Michael
Geibel, Christoph
Brando, Manuel
Khim, Seunghyun
Hassinger, Elena
contents Odd-parity superconductivity is a fundamentally interesting but rare state of matter with a potential for applications in topological quantum computing. Crystals with staggered locally noncentrosymmetric structures have been proposed as platforms where a magnetic field can induce a transition between even- and odd-parity superconducting (SC) states. The strongly correlated superconductor CeRh$_2$As$_2$ with the critical temperature $T_{\mathrm{c}}\approx0.4\,\mathrm{K}$ is likely the first example material showing such a phase transition, which occurs at the magnetic field $μ_{0}H^{*}=4\,\mathrm{T}$ applied along the crystallographic $c$ axis. CeRh$_2$As$_2$ also undergoes a phase transition of an unknown origin at $T_{0}=0.5\,\mathrm{K}$. By subjecting CeRh$_2$As$_2$ to hydrostatic pressure and mapping the resultant changes to the SC phase diagrams we investigated how the lattice compression and changes to the electronic correlations affect the stability and relative balance of the two SC states. The abnormally high in-plane upper critical field becomes even higher close to a quantum critical point of the $T_{0}$ order. Remarkably, the SC phase-switching field $H^{*}$ is drastically reduced under pressure, dropping to $0.3\,\mathrm{T}$ at $2.7\,\mathrm{GPa}$. This result signals an apparent strengthening of the local noncentrosymmetricity and forecasts a possible stabilization of the putative odd-parity state down to zero field, hitherto not considered by theoretical models.
format Preprint
id arxiv_https___arxiv_org_abs_2312_09729
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Exposing the odd-parity superconductivity in CeRh$_2$As$_2$ with hydrostatic pressure
Semeniuk, Konstantin
Pfeiffer, Meike
Landaeta, Javier F.
Nicklas, Michael
Geibel, Christoph
Brando, Manuel
Khim, Seunghyun
Hassinger, Elena
Superconductivity
Odd-parity superconductivity is a fundamentally interesting but rare state of matter with a potential for applications in topological quantum computing. Crystals with staggered locally noncentrosymmetric structures have been proposed as platforms where a magnetic field can induce a transition between even- and odd-parity superconducting (SC) states. The strongly correlated superconductor CeRh$_2$As$_2$ with the critical temperature $T_{\mathrm{c}}\approx0.4\,\mathrm{K}$ is likely the first example material showing such a phase transition, which occurs at the magnetic field $μ_{0}H^{*}=4\,\mathrm{T}$ applied along the crystallographic $c$ axis. CeRh$_2$As$_2$ also undergoes a phase transition of an unknown origin at $T_{0}=0.5\,\mathrm{K}$. By subjecting CeRh$_2$As$_2$ to hydrostatic pressure and mapping the resultant changes to the SC phase diagrams we investigated how the lattice compression and changes to the electronic correlations affect the stability and relative balance of the two SC states. The abnormally high in-plane upper critical field becomes even higher close to a quantum critical point of the $T_{0}$ order. Remarkably, the SC phase-switching field $H^{*}$ is drastically reduced under pressure, dropping to $0.3\,\mathrm{T}$ at $2.7\,\mathrm{GPa}$. This result signals an apparent strengthening of the local noncentrosymmetricity and forecasts a possible stabilization of the putative odd-parity state down to zero field, hitherto not considered by theoretical models.
title Exposing the odd-parity superconductivity in CeRh$_2$As$_2$ with hydrostatic pressure
topic Superconductivity
url https://arxiv.org/abs/2312.09729