TY - JOUR
T1 - Edge-induced pairing states in a Josephson junction through a spin-polarized quantum anomalous Hall insulator
AU - Nakai, Ryota
AU - Nomura, Kentaro
AU - Tanaka, Yukio
N1 - Funding Information:
This work was supported by the Japan Society for the Promotion of Science KAKENHI (Grants No. JP17K17604, No. JP20H01830, No. JP18H01176, and No. JP20H01857) and by CREST, Japan Science and Technology Agency (Grant No. JPMJCR18T2). Y.T. was also supported by Grant-in-Aid for Scientific Research A (KAKENHI Grant No. JP20H00131) and the JSPS Core-to-Core program Oxide Superspin International Network.
Publisher Copyright:
© 2021 American Physical Society.
PY - 2021/5/18
Y1 - 2021/5/18
N2 - Despite the robustness of the chiral edge modes of quantum Hall systems against the superconducting proximity effect, Cooper pairs can penetrate into the chiral edge channels and carry the Josephson current in an appropriate setup. In our work, the Josephson junction of a spin-polarized quantum anomalous Hall insulator (QAHI) with a Chern number ν=1 connecting conventional superconductors is studied from the perspective of pairing symmetry consistent with the chiral edge mode. Induced pairing states are equal-spin triplet, a combination of the even- and odd-frequency components, nonlocally extended, and have a finite momentum 2kF. The signature of the equal-spin triplet pairings is confirmed via the dependence on the interface-magnetization direction, and that of the finite-momentum pairing states via the width dependence of the critical current and the spatial profile of the anomalous Green's function. In the presence of disorder, the robustness of the chiral edge mode leads to high sensitivity of the critical current and the equilibrium phase difference to disorder configurations, which is resulting from the interference of current-carrying channels. The numerical calculations on a lattice model are also examined by a simplified analytical model.
AB - Despite the robustness of the chiral edge modes of quantum Hall systems against the superconducting proximity effect, Cooper pairs can penetrate into the chiral edge channels and carry the Josephson current in an appropriate setup. In our work, the Josephson junction of a spin-polarized quantum anomalous Hall insulator (QAHI) with a Chern number ν=1 connecting conventional superconductors is studied from the perspective of pairing symmetry consistent with the chiral edge mode. Induced pairing states are equal-spin triplet, a combination of the even- and odd-frequency components, nonlocally extended, and have a finite momentum 2kF. The signature of the equal-spin triplet pairings is confirmed via the dependence on the interface-magnetization direction, and that of the finite-momentum pairing states via the width dependence of the critical current and the spatial profile of the anomalous Green's function. In the presence of disorder, the robustness of the chiral edge mode leads to high sensitivity of the critical current and the equilibrium phase difference to disorder configurations, which is resulting from the interference of current-carrying channels. The numerical calculations on a lattice model are also examined by a simplified analytical model.
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U2 - 10.1103/PhysRevB.103.184509
DO - 10.1103/PhysRevB.103.184509
M3 - Article
AN - SCOPUS:85107141560
VL - 103
JO - Physical Review B
JF - Physical Review B
SN - 2469-9950
IS - 18
M1 - 184509
ER -