903 research outputs found
Lasing in circuit quantum electrodynamics with strong noise
We study a model which can describe a superconducting single electron
transistor (SSET) or a double quantum dot coupled to transmission-line
oscillator. In both cases the degree of freedom is given by a charged particle,
which couples strongly to the electromagnetic environment or phonons. We
consider the case where a lasing condition is established and study the
dependence of the average photon number in the resonator on the spectral
function of the electromagnetic environment. We focus on three important cases:
a strongly coupled environment with a small cut-off frequency, a structured
environment peaked at a specific frequency and 1/f-noise. We find that the
electromagnetic environment can have a substantial impact on the photon
creation. Resonance peaks are in general broadened and additional resonances
can appear
Full counting statistics of information content
We review connections between the cumulant generating function of full
counting statistics of particle number and the R\'enyi entanglement entropy. We
calculate these quantities based on the fermionic and bosonic path-integral
defined on multiple Keldysh contours. We relate the R\'enyi entropy with the
information generating function, from which the probability distribution
function of self-information is obtained in the nonequilibrium steady state. By
exploiting the distribution, we analyze the information content carried by a
single bosonic particle through a narrow-band quantum communication channel.
The ratio of the self-information content to the number of bosons fluctuates.
For a small boson occupation number, the average and the fluctuation of the
ratio are enhanced.Comment: 16 pages, 5 figure
Kondo effect in quantum dots coupled to ferromagnetic leads
We study the Kondo effect in a quantum dot which is coupled to ferromagnetic
leads and analyse its properties as a function of the spin polarization of the
leads. Based on a scaling approach we predict that for parallel alignment of
the magnetizations in the leads the strong-coupling limit of the Kondo effect
is reached at a finite value of the magnetic field. Using an equation-of-motion
technique we study nonlinear transport through the dot. For parallel alignment
the zero-bias anomaly may be split even in the absence of an external magnetic
field. For antiparallel spin alignment and symmetric coupling, the peak is
split only in the presence of a magnetic field, but shows a characteristic
asymmetry in amplitude and position.Comment: 5 pages, 2 figure
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