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High-order time-reversal symmetry breaking normal state
Spontaneous time-reversal symmetry breaking plays an important role in studying strongly correlated unconventional superconductors. When two superconducting gap functions with different symmetries compete, the relative phase channel ( θ − ≡ θ 1 − θ 2 ) exhibits an Ising-type Z 2 symmetry due to the...
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Published in: | Science China. Physics, mechanics & astronomy mechanics & astronomy, 2024-03, Vol.67 (3), p.237411, Article 237411 |
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Main Authors: | , , , , |
Format: | Article |
Language: | English |
Subjects: | |
Citations: | Items that this one cites Items that cite this one |
Online Access: | Get full text |
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Summary: | Spontaneous time-reversal symmetry breaking plays an important role in studying strongly correlated unconventional superconductors. When two superconducting gap functions with different symmetries compete, the relative phase channel (
θ
−
≡
θ
1
−
θ
2
) exhibits an Ising-type
Z
2
symmetry due to the second order Josephson coupling, where
θ
1,2
are the phases of two gap functions. In contrast, the
U
(1) symmetry in the channel of
is intact. The phase locking, i.e., ordering of
θ
−
, can take place in the phase fluctuation regime before the onset of superconductivity, i.e., when
θ
+
is disordered. If
θ
−
is pinned at
, then time-reversal symmetry is broken in the normal state, otherwise, if
θ
−
= 0, or,
π
, rotational symmetry is broken, leading to a nematic normal state. In both cases, the order parameters possess a 4-fermion structure beyond the scope of mean-field theory, which can be viewed as a high order symmetry breaking. We employ an effective two-component
XY
-model assisted by a renormalization group analysis to address this problem. As a natural by-product, we also find the other interesting intermediate phase corresponds to ordering of
θ
+
but with
θ
−
disordered. This is the quartetting, or, charge-4
e
, superconductivity, which occurs above the low temperature
Z
2
-breaking charge-2
e
superconducting phase. Our results provide useful guidance for studying novel symmetry breaking phases in strongly correlated superconductors. |
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ISSN: | 1674-7348 1869-1927 |
DOI: | 10.1007/s11433-023-2287-8 |