spin decoherence
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Author(s):  
Sven Bodenstedt ◽  
Denis Moll ◽  
Stefan Glöggler ◽  
Morgan W. Mitchell ◽  
Michael C. D. Tayler

2021 ◽  
Vol 155 (19) ◽  
pp. 194109
Author(s):  
Sina G. Lewis ◽  
Kori E. Smyser ◽  
Joel D. Eaves

Entropy ◽  
2021 ◽  
Vol 23 (10) ◽  
pp. 1333
Author(s):  
Peter A. Ivanov

I propose a quantum metrology protocol for measuring frequencies and weak forces based on a periodic modulating quantum Jahn–Teller system composed of a single spin and two bosonic modes. I show that, in the first order of the frequency drive, the time-independent effective Hamiltonian describes spin-dependent interaction between the two bosonic modes. In the limit of high-frequency drive and low bosonic frequency, the quantum Jahn–Teller system exhibits critical behavior which can be used for high-precision quantum estimation. A major advantage of the scheme is the robustness of the system against spin decoherence, which allows it to perform parameter estimation with measurement time not limited by spin dephasing.


2020 ◽  
Vol 22 (3) ◽  
pp. 033017
Author(s):  
J A Crosse

iScience ◽  
2020 ◽  
Vol 23 (3) ◽  
pp. 100926 ◽  
Author(s):  
Jing Li ◽  
Lei Yin ◽  
Shi-Jie Xiong ◽  
Xing-Long Wu ◽  
Fei Yu ◽  
...  

2019 ◽  
Vol 151 (16) ◽  
pp. 164124
Author(s):  
Marina Kveder ◽  
Boris Rakvin ◽  
Jiangyang You

2019 ◽  
Author(s):  
Alexander Aksentev

The purpose of the present work is the development of a method for searching the electric dipole moment (EDM) of the deuteron inside the storage ring environment using the frozen spin method. The 2D frozen spin method is a variation on the original frozen spin method proposed at Brookhaven National Laboratory, in which the beam polarisation vector freely precesses in the vertical plane. One distinguishing feature of the 2D frozen spin method, is that it uses the radial magnetic fields induced by the accelerator optical lattice's imperfections to drive the vertical plane precession. The net electric + magnetic dipole moment spin precession frequency is measured. The EDM estimator is constructed as the sum of the net frequency estimates in two cases: when the beam circulates clockwise (CW), and when it does counter-clockwise (CCW). For the deuteron, since the experiment is performed in a combined ring, the beam circulation direction change requires flipping the polarity of the guiding magnetic field. When this is done, the imperfection fields change their sign as well, and so does the magnetic dipole moment (MDM) component of the spin precession angular velocity vector. Therefore, theoretically, the MDM term cancels in the EDM estimator. The trick is to calibrate the MDM precession frequency with sufficient precision. For that purpose, the concept of the effective Lorentz factor was introduced. We try to prove that particles having equal values of the effective Lorentz factor have equal spin tunes (and invariant spin axis orientations as well), and therefore, by controlling a single parameter -- the effective Lorentz factor -- it is possible to calibrate the MDM component of the precession frequency. A special calibration procedure is numerically modelled, with the conclusion that it allows sufficiently precise MDM spin precession frequency reproduction. Three major systematic effects of spin dynamics have been analysed: 1) perturbations to the particle spin dynamics caused by betatron oscillations, 2) spin decoherence in the zero spin resonance (frozen spin) region, 3) properties of the machine imperfection MDM spin precession angular velocity. We conclude that the first systematic effect is negligible; analyse the sextupole field approach to suppressing spin decoherence, and find it effective; find that the imperfections systematic error is linear, but asymmetric with respect to the beam circulation direction, which is more motivation for using the effective Lorentz factor as the tool for calibrating the MDM spin precession frequency. Overall, we find the proposed method effective.


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