16.20.Db Band-gap modulation quantum dots

Generating Entanglement and Squeezed States of Nuclear Spins in Quantum Dots

Date: 
2011-11-08
Author(s): 

M. S. Rudner, L. M. K. Vandersypen, V. Vuletić, and L. S. Levitov

Reference: 

Physical Review Letters 107, 206806

We present a scheme for achieving coherent spin squeezing of nuclear spin states in semiconductor quantum dots. The nuclear polarization dependence of the electron spin resonance generates a unitary evolution that drives nuclear spins into a collective entangled state. The polarization dependence of the resonance generates an area-preserving, twisting dynamics that squeezes and stretches the nuclear spin Wigner distribution without the need for nuclear spin flips. Our estimates of squeezing times indicate that the entanglement threshold can be reached in current experiments. 

Nonequilibrium frequency-dependent noise through a quantum dot: A real-time functional renormalization group approach

Date: 
2011-05-10
Author(s): 

C. P. Moca, P. Simon, C. H. Chung, and G. Zaránd

Reference: 

Phys. Rev. B 83, 201303(R) (2011)

We construct a real time current-conserving functional renormalization group (RG) scheme on the Keldysh contour to study frequency-dependent transport and noise through a quantum dot in the local moment regime. We find that the current vertex develops a nontrivial nonlocal structure in time that is governed by a new set of RG equations. Solving these RG equations, we compute the complete frequency and temperature dependence of the noise spectrum.

Efficient C-Phase gate for single-spin qubits in quantum dots

Date: 
2010-10-01
Author(s): 

T. Meunier, V. E. Calado, L. M. K. Vandersypen

Reference: 

arXiv:1010.0164v1 [cond-mat.mes-hall]

Two-qubit interactions are at the heart of quantum information processing. For single-spin qubits in semiconductor quantum dots, the exchange gate has always been considered the natural two-qubit gate. The recent integration of magnetic field or g-factor gradients in coupled quantum dot systems allows for a one-step, robust realization of the controlled phase (C-Phase) gate instead.

Electron Shot Noise and Nuclear Spin Dynamics in Spin-Blockaded Quantum Dots

Date: 
2010-01-11
Author(s): 

M. S. Rudner, F. H. L. Koppens, J. A. Folk, L. M. K. Vandersypen, L. S. Levitov

Reference: 

arXiv:1001.1735v1 [cond-mat.mes-hall]

Transport through spin-blockaded quantum dots provides a means for electrical control and detection of nuclear spin dynamics in the host material. Although such experiments have become increasingly popular in recent years, interpretation of their results in terms of the underlying nuclear spin dynamics remains challenging. Here we point out a fundamental process in which nuclear spin dynamics can be driven by electron shot noise; fast electric current fluctuations generate much slower nuclear polarization dynamics, which in turn affect electron dynamics via the Overhauser field.

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