Abstract

Decoherence of Rabi oscillation in a two-level quantum system consists of two components, a simple exponential decay and a damped oscillation. In dense-ensemble spin systems like negatively charged nitrogen-vacancy (NV−) centers in diamond, fast quantum state decoherence often obscures clear observation of the Rabi nutation. On the other hand, the simple exponential decay (or baseline decay) of the oscillation in such spin systems can be readily detected but has not been thoroughly explored in the past. This study investigates in depth the baseline decay of dense spin ensembles in diamond under continuously driving microwave (MW). It is found that the baseline decay times of NV− spins decrease with the increasing MW field strength and the MW detuning dependence of the decay times shows a Lorentzian-like spectrum. The experimental findings are in good agreement with simulations based on the Bloch formalism for a simple two-level system in the low MW power region after taking into account the effect of inhomogeneous broadening. This combined investigation provides new insight into fundamental spin relaxation processes under continuous driving electromagnetic fields and paves ways to better understanding of this underexplored phenomena using single NV− centers, which have shown promising applications in quantum computing and quantum metrology.

Highlights

  • Decoherence of Rabi oscillation in a two-level quantum system consists of two components, a simple exponential decay and a damped oscillation

  • The setup consisted of a 532-nm continuous-wave laser for optical pumping and probing, and an intensified chargecoupled device (ICCD) camera for photon detection and fluorescence imaging (Fig. 3a)

  • The tested sample consisted of a fluorescent microdiamond (FMD) crystal of ~ 100 μm in diameter and ~ 10 ppm in NV density glued to a glass coverslip

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Summary

Introduction

Decoherence of Rabi oscillation in a two-level quantum system consists of two components, a simple exponential decay and a damped oscillation. The experimental findings are in good agreement with simulations based on the Bloch formalism for a simple two-level system in the low MW power region after taking into account the effect of inhomogeneous broadening This combined investigation provides new insight into fundamental spin relaxation processes under continuous driving electromagnetic fields and paves ways to better understanding of this underexplored phenomena using single ­NV− centers, which have shown promising applications in quantum computing and quantum metrology. The negatively charged nitrogen-vacancy (­ NV−) center in diamond constitutes an appealing platform for the development of quantum c­ omputers[1,2] and quantum m­ etrology[3,4] It is a highly unique solid-state spin system in that their spins are optically polarizable and can be detected and manipulated individually at room ­temperature[5,6]. Addition, investigating accumulated decoherence during ROs from successive control operations of a quantum bit (qubit) can potentially improve the outcome fidelity in quantum c­ omputing[33,34]

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