43 research outputs found
Decoherence and relaxation of single electron excitations in quantum Hall edge channels
A unified approach to decoherence and relaxation of energy resolved single
electron excitations in Integer Quantum Hall edge channels is presented. Within
the bosonization framework, relaxation and decoherence induced by interactions
and capacitive coupling to an external linear circuit are computed. An explicit
connexion with high frequency transport properties of a two terminal device
formed by the edge channel on one side and the linear circuit on the other side
is established.Comment: 4 pages, 3 figure
Quantum impurity approach to a coupled qubit problem
We consider a system of two qubits at the ends of a finite length 1D cavity.
This problem is mapped onto the double-Kondo model which is also shown to
describe the low energy physics of a finite length quantum wire with resonant
levels at its ends. At the Toulouse point the ground state energy and the
average populations and correlations of the qubits or resonant levels at zero
temperature are computed. These results show that the effective interactions
between the qubits or resonant levels can be used to probe their associated
Kondo length scale.Comment: New version (accepted in Europhysics Letters
Integer and fractional charge Lorentzian voltage pulses analyzed in the frame of Photon-assisted Shot Noise
The periodic injection of electrons in a quantum conductor using periodic
voltage pulses applied on a contact is studied in the energy and time-domain
using shot noise computation in order to make comparison with experiments. We
particularly consider the case of periodic Lorentzian voltage pulses. When
carrying integer charge, they are known to provide electronic states with a
minimal number of excitations, while other type of pulses are all accompanied
by an extra neutral cloud of electron and hole excitations. This paper focuses
on the low frequency shot noise which arises when the pulse excitations are
partitioned by a single scatterer in the framework of the Photo Assisted Shot
Noise (PASN) theory. As a unique tool to count the number of excitations
carried per pulse, shot noise reveals that pulses of arbitrary shape and
arbitrary charge show a marked minimum when the charge is integer. Shot noise
spectroscopy is also considered to perform energy-domain characterization of
the charge pulses. In particular it reveals the striking asymmetrical spectrum
of Lorentzian pulses. Finally, time-domain information is obtained from Hong Ou
Mandel like noise correlations when two trains of pulses generated on opposite
contacts collide on the scatterer. As a function of the time delay between
pulse trains, the noise is shown to measure the electron wavepacket
autocorrelation function for integer Lorentzian thanks to electron
antibunching. In order to make contact with recent experiments all the
calculations are made at zero and finite temperature
Plasmon scattering approach to energy exchange and high frequency noise in nu=2 quantum Hall edge channels
Inter-edge channel interactions in the quantum Hall regime at filling factor
nu= 2 are analyzed within a plasmon scattering formalism. We derive analytical
expressions for energy redistribution amongst edge channels and for high
frequency noise, which are shown to fully characterize the low energy plasmon
scattering. In the strong interaction limit, the predictions for energy
redistribution are compared with recent experimental data and found to
reproduce most of the observed features. Quantitative agreement can be achieved
by assuming 25 % of the injected energy is lost towards other degrees of
freedom, possibly the additional gapless excitations predicted for smooth edge
potentials.Comment: 4 pages, 4 figure
Electron quantum optics in quantum Hall edge channels
In this paper, we review recent developments in the emerging field of
electron quantum optics, stressing analogies and differences with the usual
case of photon quantum optics. Electron quantum optics aims at preparing,
manipulating and measuring coherent single electron excitations propagating in
ballistic conductors such as the edge channels of a 2DEG in the integer quantum
Hall regime. Because of the Fermi statistics and the presence of strong
interactions, electron quantum optics exhibits new features compared to the
usual case of photon quantum optics. In particular, it provides a natural
playground to understand decoherence and relaxation effects in quantum
transport.Comment: 13 pages, 6 figures. To appear in the proceedings of StatPhys 24
satellite conference on "International Conference on Frustrated Spin Systems,
Cold Atoms and Nanomaterials" held in Hanoi (14-16 July 2010
Coherence and Indistinguishability of Single Electrons Emitted by Independent Sources
The on-demand emission of coherent and indistinguishable electrons by
independent synchronized sources is a challenging task of quantum electronics,
in particular regarding its application for quantum information processing.
Using two independent on-demand electron sources, we trigger the emission of
two single-electron wavepackets at different inputs of an electronic
beamsplitter. Whereas classical particles would be randomly partitioned by the
splitter, we observe two-particle interferences resulting from quantum
exchange. Both electrons, emitted in indistinguishable wavepackets with
synchronized arrival time on the splitter, exit in different outputs as
recorded by the low frequency current noise. The demonstration of two-electron
interference provides the possibility to manipulate coherent and
indistinguishable single-electron wavepackets in quantum conductors.Comment: Science Express of January 24 201
Electron coherence at low temperatures: The role of magnetic impurities
We review recent experimental progress on the saturation problem in metallic
quantum wires. In particular, we address the influence of magnetic impurities
on the electron phase coherence time. We also present new measurements of the
phase coherence time in ultra-clean gold and silver wires and analyse the
saturation of \tauphi in these samples, cognizant of the role of magnetic
scattering. For the cleanest samples, Kondo temperatures below 1 mK and
extremely-small magnetic-impurity concentration levels of less than 0.08 ppm
have to be assumed to attribute the observed saturation to the presence of
magnetic impurities.Comment: review article, 14 pages, 11 figures. Physica E (in press
Nanomechanical Detection of Itinerant Electron Spin Flip
Spin is an intrinsically quantum property, characterized by angular momentum.
A change in the spin state is equivalent to a change in the angular momentum or
mechanical torque. This spin-induced torque has been invoked as the intrinsic
mechanism in experiments ranging from the measurements of angular momentum of
photons g-factor of metals and magnetic resonance to the magnetization reversal
in magnetic multi-layers A spin-polarized current introduced into a nonmagnetic
nanowire produces a torque associated with the itinerant electron spin flip.
Here, we report direct measurement of this mechanical torque and itinerant
electron spin polarization in an integrated nanoscale torsion oscillator, which
could yield new information on the itinerancy of the d-band electrons. The
unprecedented torque sensitivity of 10^{-22} N m/ \sqrt{Hz} may enable
applications for spintronics, precision measurements of CP-violating forces,
untwisting of DNA and torque generating molecules.Comment: 14 pages, 4 figures. visit http://nano.bu.edu/ for related paper