论文标题

$^{14} \ mathrm {nv} $和$^{15} \ mathrm {nv} $接地状态歧管的温度灵敏度

Temperature Sensitivity of $^{14}\mathrm{NV}$ and $^{15}\mathrm{NV}$ Ground State Manifolds

论文作者

Lourette, Sean, Jarmola, Andrey, Acosta, Victor M., Birdwell, A. Glen, Budker, Dmitry, Doherty, Marcus W., Ivanov, Tony, Malinovsky, Vladimir S.

论文摘要

我们测量了两个氮同位素($^{14} \ MathRM {NV} $和$^{15} {15} \ Mathrm {NV} $的氮同位素($^{14} \ Mathrm {nv} $)在77 k.400 k.的范围内,电子和核自旋过渡频率以钻石为中心的钻石中心($^{14} \ mathrm {nv} $和400 k. 47 k. kitry ramsy,核和电子旋转的光学读数。我们提取耦合参数$ q $(对于$^{14} \ mathrm {nv} $),$ d $,$ a_ {|||} $,$ a _ {\ perp} $,$γ_e/γ_n$以及两种isotopes的温度依赖性。发现$ M_S = 0 $旋转室温度附近的核旋转过渡的温度依赖性为+0.52(1)ppm/k,对于$^{14} \ Mathrm {nv} $($ | m_i = -1> \ leftrightArlow $^{15} \ mathrm {nv} $($ | m_i = -1/2> \ leftrightArrow | m_i =+1/2> $)。在$^{14} \ mathrm {nv} $和$^{15} \ Mathrm {nv} $之间,零视场分裂参数$ d $的同位偏移是$ \ sim $ 120 khz。观察到残留的横向磁场可以移动核自旋过渡频率,尤其是对于$^{15} \ Mathrm {NV} $。我们精确地确定了与开发基于核旋转的钻石量子传感器相关的参数集,对环境因素的敏感性大大降低了。

We measure electron and nuclear spin transition frequencies in the ground state of nitrogen-vacancy (NV) centers in diamond for two nitrogen isotopes ($^{14}\mathrm{NV}$ and $^{15}\mathrm{NV}$) over temperatures ranging from 77 K to 400 K. Measurements are performed using Ramsey interferometry and direct optical readout of the nuclear and electron spins. We extract coupling parameters $Q$ (for $^{14}\mathrm{NV}$), $D$, $A_{||}$, $A_{\perp}$, $γ_e/γ_n$, and their temperature dependences for both isotopes. The temperature dependences of the nuclear-spin transitions within the $m_s = 0$ spin manifold near room temperature are found to be +0.52(1) ppm/K for $^{14}\mathrm{NV}$ ($|m_I=-1> \leftrightarrow |m_I=+1>$) and -1.1(1) ppm/K for $^{15}\mathrm{NV}$ ($|m_I=-1/2> \leftrightarrow |m_I=+1/2>$). An isotopic shift in the zero-field splitting parameter $D$ between $^{14}\mathrm{NV}$ and $^{15}\mathrm{NV}$ is measured to be $\sim$ 120 kHz. Residual transverse magnetic fields are observed to shift the nuclear spin transition frequencies, especially for $^{15}\mathrm{NV}$. We have precisely determined the set of parameters relevant for the development of nuclear-spin-based diamond quantum sensors with greatly reduced sensitivity to environmental factors.

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