Literature DB >> 26878235

Controlling spin relaxation with a cavity.

A Bienfait1, J J Pla2, Y Kubo1, X Zhou1,3, M Stern1,4, C C Lo2, C D Weis5, T Schenkel5, D Vion1, D Esteve1, J J L Morton2, P Bertet1.   

Abstract

Spontaneous emission of radiation is one of the fundamental mechanisms by which an excited quantum system returns to equilibrium. For spins, however, spontaneous emission is generally negligible compared to other non-radiative relaxation processes because of the weak coupling between the magnetic dipole and the electromagnetic field. In 1946, Purcell realized that the rate of spontaneous emission can be greatly enhanced by placing the quantum system in a resonant cavity. This effect has since been used extensively to control the lifetime of atoms and semiconducting heterostructures coupled to microwave or optical cavities, and is essential for the realization of high-efficiency single-photon sources. Here we report the application of this idea to spins in solids. By coupling donor spins in silicon to a superconducting microwave cavity with a high quality factor and a small mode volume, we reach the regime in which spontaneous emission constitutes the dominant mechanism of spin relaxation. The relaxation rate is increased by three orders of magnitude as the spins are tuned to the cavity resonance, demonstrating that energy relaxation can be controlled on demand. Our results provide a general way to initialize spin systems into their ground state and therefore have applications in magnetic resonance and quantum information processing. They also demonstrate that the coupling between the magnetic dipole of a spin and the electromagnetic field can be enhanced up to the point at which quantum fluctuations have a marked effect on the spin dynamics; as such, they represent an important step towards the coherent magnetic coupling of individual spins to microwave photons.

Entities:  

Year:  2016        PMID: 26878235     DOI: 10.1038/nature16944

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  15 in total

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  6 in total

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2.  A coherent spin-photon interface in silicon.

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3.  Detecting spins by their fluorescence with a microwave photon counter.

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4.  Nonlinear detection of secondary isotopic chemical shifts in NMR through spin noise.

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5.  Experimental protection of quantum coherence by using a phase-tunable image drive.

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6.  Twenty-three-millisecond electron spin coherence of erbium ions in a natural-abundance crystal.

Authors:  Marianne Le Dantec; Miloš Rančić; Sen Lin; Eric Billaud; Vishal Ranjan; Daniel Flanigan; Sylvain Bertaina; Thierry Chanelière; Philippe Goldner; Andreas Erb; Ren Bao Liu; Daniel Estève; Denis Vion; Emmanuel Flurin; Patrice Bertet
Journal:  Sci Adv       Date:  2021-12-15       Impact factor: 14.136

  6 in total

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