Spin shuttling in a silicon double quantum dot

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Ginzel, Florian, Mills, Adam R., Petta, Jason R., Burkard, Guido
Format: Preprint
Published: 2020
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866929606521520128
author Ginzel, Florian
Mills, Adam R.
Petta, Jason R.
Burkard, Guido
author_facet Ginzel, Florian
Mills, Adam R.
Petta, Jason R.
Burkard, Guido
contents The transport of quantum information between different nodes of a quantum device is among the challenging functionalities of a quantum processor. In the context of spin qubits, this requirement can be met by coherent electron spin shuttling between semiconductor quantum dots. Here we theoretically study a minimal version of spin shuttling between two quantum dots. To this end, we analyze the dynamics of an electron during a detuning sweep in a silicon double quantum dot (DQD) occupied by one electron. Possibilities and limitations of spin transport are investigated. Spin-orbit interaction and the Zeeman effect in an inhomogeneous magnetic field play an important role for spin shuttling and are included in our model. Interactions that couple the position, spin and valley degrees of freedom open a number of avoided crossings in the spectrum allowing for diabatic transitions and interfering paths. The outcomes of single and repeated spin shuttling protocols are explored by means of numerical simulations and an approximate analytical model based on the solution of the Landau--Zener problem. We find that a spin infidelity as low as $1-F_s\lesssim 0.002$ with a relatively fast level velocity of $α= 600\, μ$eV/ns is feasible for optimal choices of parameters or by making use of constructive interference.
format Preprint
id arxiv_https___arxiv_org_abs_2007_03598
institution arXiv
publishDate 2020
record_format arxiv
spellingShingle Spin shuttling in a silicon double quantum dot
Ginzel, Florian
Mills, Adam R.
Petta, Jason R.
Burkard, Guido
Mesoscale and Nanoscale Physics
Quantum Physics
The transport of quantum information between different nodes of a quantum device is among the challenging functionalities of a quantum processor. In the context of spin qubits, this requirement can be met by coherent electron spin shuttling between semiconductor quantum dots. Here we theoretically study a minimal version of spin shuttling between two quantum dots. To this end, we analyze the dynamics of an electron during a detuning sweep in a silicon double quantum dot (DQD) occupied by one electron. Possibilities and limitations of spin transport are investigated. Spin-orbit interaction and the Zeeman effect in an inhomogeneous magnetic field play an important role for spin shuttling and are included in our model. Interactions that couple the position, spin and valley degrees of freedom open a number of avoided crossings in the spectrum allowing for diabatic transitions and interfering paths. The outcomes of single and repeated spin shuttling protocols are explored by means of numerical simulations and an approximate analytical model based on the solution of the Landau--Zener problem. We find that a spin infidelity as low as $1-F_s\lesssim 0.002$ with a relatively fast level velocity of $α= 600\, μ$eV/ns is feasible for optimal choices of parameters or by making use of constructive interference.
title Spin shuttling in a silicon double quantum dot
topic Mesoscale and Nanoscale Physics
Quantum Physics
url https://arxiv.org/abs/2007.03598