Cooper Pair Spectroscopy for Odd-Frequency Superconductors
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Publicerad
Författare
Typ
Examensarbete för masterexamen
Master's Thesis
Master's Thesis
Program
Modellbyggare
Tidskriftstitel
ISSN
Volymtitel
Utgivare
Sammanfattning
In conventional spin-singlet superconductors with even parity, the anomalous pairing
amplitude is even in frequency. Odd-frequency superconductivity is an unconventional
superconducting state in which the pair amplitude is odd under exchange of
time coordinates. Since superconducting pairing is encoded in two-particle correlations,
double photoelectron spectroscopy provides a natural framework for probing
such states through the simultaneous detection of two photoemitted electrons.
When applied to superconducting samples, this approach is commonly referred to as
Cooper pair spectroscopy. In this thesis, a Green’s-function formulation of Cooper
pair spectroscopy for odd-frequency superconductors is developed by extending the
theoretical structure of angle-resolved photoemission spectroscopy to the doublephotoemission
case.
Starting from an expansion of the S-matrix, the double-photoelectron counting rate
is derived to second order, which is the lowest order giving a non-vanishing contribution.
The result separates into an anomalous contribution, expressed through
greater anomalous Green’s functions, and a normal contribution, expressed through
lesser normal Green’s functions. The anomalous part describes correlated emission
associated with a single Cooper pair, while the normal part describes contributions
from ordinary single-particle correlations.
The main result is that odd-frequency pairing leads to a different momentum structure
in the anomalous contribution than conventional even-frequency pairing. In
particular, the odd-frequency kernel contains a difference of screened Coulomb potentials,
whereas the even-frequency case contains their sum. Consequently, for a
symmetric screened Coulomb potential, the momentum dependence of the electron–
photon coupling becomes essential for obtaining a finite odd-frequency anomalous
contribution. The derived expression therefore identifies a key formal distinction
between even- and odd-frequency superconductors in double photoelectron spectroscopy
and provides a basis for future numerical and experimental investigations.
Beskrivning
Ämne/nyckelord
Superconductivity, Odd-frequency pairing, Cooper pairs, Double photoelectron spectroscopy, Green’s functions, Anomalous Green’s functions, Counting rate
