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All-optical quantum thermometry based on spin-level cross-relaxation and multicenter entanglement under ambient conditions in SiC

机译:基于SIC的环境条件下基于自旋级交叉放松和多中心缠结的全光量子温度

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All-optical thermometry technique based on the energy level cross-relaxation in atomic-scale spin centers in SiC is demonstrated. This technique exploits a giant thermal shift of the zero-field splitting for centers in the triplet ground state, S=1, undetected by photoluminescence (so called “dark” centers) coupling to neighbouring spin-3/2 centers which can be optically polarized and read out (“bright” centers), and does not require radiofrequency fields. EPR was used to identify defects. The width of the cross-relaxation line is almost an order of magnitude smaller than the width of the excited state level-anticrossing line, which was used in all-optical thermometry and which can not be significantly reduced since determined by the lifetime of the excited state. With approximately the same temperature shift and the same signal intensities as for excited state level-anticrossing, cross-relaxation signal makes it possible to increase the sensitivity of the temperature measurement by more than an order of magnitude. Temperature sensitivity is estimated to be approximately 10 mK/Hzsup1/2/sup within a volume about 1 μsup3/sup, allocated by focused laser excitation in a scanning confocal microscope. Using cross-relaxation in the ground states of “bright” spin-3/2 centers and “dark” S=1 centers for temperature sensing and ground state level anti-crossing of “bright” spin-3/2 centers an integrated magnetic field and temperature sensor with submicron space resolution can be implemented using the same spin system. The coupling of individually addressable “bright” spin-3/2 centers connected by a chain of “dark” S=1 spins, could be considered in quantum information processing and multicenter entanglement under ambient conditions.
机译:证明了基于SiC中原子级旋转中心的能量水平交叉弛豫的全光学测温技术。该技术利用三联地面状态的零场分裂的零场分裂的巨大热移位,S = 1,通过光致发光(所谓的“暗”中心)耦合到可以光学偏振的相邻的旋转3/2中心并读出(“明亮的”中心),不需要射频领域。 EPR用于识别缺陷。交叉弛豫线的宽度几乎小于激发态电平抵抗线的宽度的数量级,其在全光学温度测量中使用,并且由于由兴奋的寿命确定而无法显着降低状态。具有大致相同的温度移位和与激发状态电平 - 逆转的相同的信号强度,交叉弛豫信号使得可以使温度测量的灵敏度增加超过一个数量级。温度敏感度估计为约10mk / hz 1/2 在约1μm 3 的体积内,通过聚焦激光激发在扫描共聚焦显微镜中分配。在“明亮”旋转3/2中心和“暗”S = 1个温度传感和接地状态下的“暗”S = 1个中心的“明亮”旋转3/2中心的横向放松,“明亮”旋转3/2中心的集成磁场可以使用相同的自旋系统实现具有亚微米空间分辨率的温度传感器。通过链条连接“暗”S = 1旋转链的可单独寻址的“明亮”旋转3/2中心的耦合可以在量子信息处理和环境条件下进行多中心缠结。

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