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The nitrogen-vacancy (NV) defect in diamond is an efficient quantum sensor of randomly fluctuating signals via relaxometry measurements. In particular, the longitudinal spin relaxation of the NV defect accelerates in the presence of…

介观与纳米尺度物理 · 物理学 2021-06-23 M. Rollo , A. Finco , R. Tanos , F. Fabre , T. Devolder , I. Robert-Philip , V. Jacques

The negatively charged nitrogen-vacancy centre (NV$^-$) in diamond has been utilized in a wide variety of sensing applications. The centre's long spin coherence and relaxation times ($T_2^*$, $T_2$ and $T_1$) at room temperature are crucial…

Nanodiamonds (NDs) hosting nitrogen-vacancy (NV) centers are promising for applications of quantum sensing. Long spin relaxation times ($T_1$ and $T_2$) are critical for high sensitivity in quantum applications. It has been shown that…

介观与纳米尺度物理 · 物理学 2020-08-11 Zaili Peng , Jax Dallas , Susumu Takahashi

We report the experimental study of the temperature-dependence of the longitudinal spin relaxation time $T_1$ of single Nitrogen-Vacancy (NV) centers hosted in nanodiamonds. To determine the relaxation mechanisms at stake, measurements of…

介观与纳米尺度物理 · 物理学 2020-11-04 Timothée de Guillebon , Baptiste Vindolet , Jean-François Roch , Vincent Jacques , Loïc Rondin

We present a study of the spin properties of dense layers of near-surface nitrogen-vacancy (NV) centres in diamond created by nitrogen ion implantation. The optically detected magnetic resonance contrast and linewidth, spin coherence time,…

Nitrogen-vacancy (NV) centers in millimeter-scale diamond samples were produced by irradiation and subsequent annealing under varied conditions. The optical and spin relaxation properties of these samples were characterized using confocal…

We present measurements of spin relaxation times (T_1, T_1,rho, T_2) on very shallow (<5 nm) nitrogen-vacancy (NV) centers in high-purity diamond single crystals. We find a reduction of spin relaxation times up to 30x compared to bulk…

介观与纳米尺度物理 · 物理学 2014-05-15 T. Rosskopf , A. Dussaux , K. Ohashi , M. Loretz , R. Schirhagl , H. Watanabe , S. Shikata , K. M. Itoh , C. L. Degen

Spin defects in diamond are promising platforms for quantum sensing. The longest electron spin relaxation times ($T_1$) at room temperature for solid-state defects are observed in nitrogen vacancy centers in diamond, which can reach 6.67…

A nitrogen-vacancy (NV) center in diamond is a promising sensor for nanoscale magnetic sensing. Here we report electron spin resonance (ESR) spectroscopy using a single NV center in diamond. First, using a 230 GHz ESR spectrometer, we…

介观与纳米尺度物理 · 物理学 2016-10-05 Chathuranga Abeywardana , Viktor Stepanov , Franklin H. Cho , Susumu Takahashi

We probe the relaxation dynamics of the full three-level spin system of near-surface nitrogen-vacancy (NV) centers in diamond to define a $T_{1}$ relaxation time that helps resolve the $T_{2} \leq 2T_{1}$ coherence limit of the NV's subset…

介观与纳米尺度物理 · 物理学 2017-05-17 Bryan A. Myers , Amila Ariyaratne , Ania C. Bleszynski Jayich

Quantum sensing with spin defects in diamond, such as the nitrogen-vacancy (NV) center, enables the detection of various chemical species on the nanoscale. Molecules or ions with unpaired electronic spins are typically probed by their…

We present an experimental study of the longitudinal electron-spin relaxation time (T1) of negatively charged nitrogen-vacancy (NV) ensembles in diamond. T1 was studied as a function of temperature from 5 to 475 K and magnetic field from 0…

材料科学 · 物理学 2015-06-03 A. Jarmola , V. M. Acosta , K. Jensen , S. Chemerisov , D. Budker

Spin defects in solids offer promising platforms for quantum sensing and memory due to their long coherence times and optical addressability. Here, we integrate a single nitrogen-vacancy (NV) center in diamond with scanning probe microscopy…

We present an experimental study of the longitudinal electron-spin relaxation of ensembles of negatively charged nitrogen-vacancy (NV ) centers in diamond. The measurements were performed with samples having different NV- concentrations and…

原子物理 · 物理学 2015-05-12 M. Mrozek , D. Rudnicki , P. Kehayias , A. Jarmola , D. Budker , W. Gawlik

Spin relaxometry using solid-state spin defects, such as the diamond nitrogen-vacancy (NV) center, probes dynamical processes by measuring how environmental fluctuations enhance the spin relaxation rate. In the weak-coupling limit,…

介观与纳米尺度物理 · 物理学 2026-02-03 Ruotian Gong , Alex L. Melendez , Guanghui He , Zhongyuan Liu , Chong Zu , Huan Zhao

Currently, the primary applications of fluorescent nanodiamonds (FNDs) are in the area of biosensing, by using photoluminescence or spin properties of colour centres, mainly represented by the Nitrogen Vacancy (NV) point defect. The…

介观与纳米尺度物理 · 物理学 2026-05-19 Jeroen Prooth , Michael Petrov , Alevtina Shmakova , Michal Gulka , Petr Cigler , Jan D'Haen , Hans-Gerd Boyen , Milos Nesladek

We present systematic measurements of longitudinal relaxation rates ($1/T_1$) of spin polarization in the ground state of the nitrogen-vacancy (NV$^-$) color center in synthetic diamond as a function of NV$^-$ concentration and magnetic…

量子物理 · 物理学 2015-12-17 A. Jarmola , A. Berzins , J. Smits , K. Smits , J. Prikulis , F. Gahbauer , R. Ferber , D. Erts , M. Auzinsh , D. Budker

Investigating spin and charge noise in strongly correlated electron systems is a valuable way to analyze their physical properties and unlock new phases of matter. In this context, nitrogen-vacancy (NV) center-based magnetometry has been…

Near-surface nitrogen-vacancy (NV) centers have been created in diamond through low energy implantation of 15N to sense electron spins that are external to the diamond. By performing double resonance experiments, we have verified the…

介观与纳米尺度物理 · 物理学 2015-06-11 H. J. Mamin , M. H. Sherwood , D. Rugar

Thanks to their versatility, nitrogen-vacancy (NV) centers in nanodiamonds have been widely adopted as nanoscale sensors. However, their sensitivities are limited by their short coherence times relative to NVs in bulk diamond. A more…

介观与纳米尺度物理 · 物理学 2020-03-09 Aedan Gardill , Matthew C. Cambria , Shimon Kolkowitz
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