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采用碳化硅中设计的硅空位中心进行高压下的磁探测。

Magnetic detection under high pressures using designed silicon vacancy centres in silicon carbide.

作者信息

Wang Jun-Feng, Liu Lin, Liu Xiao-Di, Li Qiang, Cui Jin-Ming, Zhou Di-Fan, Zhou Ji-Yang, Wei Yu, Xu Hai-An, Xu Wan, Lin Wu-Xi, Yan Jin-Wei, He Zhen-Xuan, Liu Zheng-Hao, Hao Zhi-He, Li Hai-Ou, Liu Wen, Xu Jin-Shi, Gregoryanz Eugene, Li Chuan-Feng, Guo Guang-Can

机构信息

CAS Key Laboratory of Quantum Information, University of Science and Technology of China, Hefei, China.

College of Physics, Sichuan University, Chengdu, China.

出版信息

Nat Mater. 2023 Apr;22(4):489-494. doi: 10.1038/s41563-023-01477-5. Epub 2023 Mar 23.

Abstract

Pressure-induced magnetic phase transitions are attracting interest as a means to detect superconducting behaviour at high pressures in diamond anvil cells, but determining the local magnetic properties of samples is a challenge due to the small volumes of sample chambers. Optically detected magnetic resonance of nitrogen vacancy centres in diamond has recently been used for the in situ detection of pressure-induced phase transitions. However, owing to their four orientation axes and temperature-dependent zero-field splitting, interpreting these optically detected magnetic resonance spectra remains challenging. Here we study the optical and spin properties of implanted silicon vacancy defects in 4H-silicon carbide that exhibit single-axis and temperature-independent zero-field splitting. Using this technique, we observe the magnetic phase transition of NdFeB at about 7 GPa and map the critical temperature-pressure phase diagram of the superconductor YBaCuO. These results highlight the potential of silicon vacancy-based quantum sensors for in situ magnetic detection at high pressures.

摘要

压力诱导的磁相变作为一种在金刚石压腔中检测高压超导行为的手段引起了人们的兴趣,但由于样品腔室的体积较小,确定样品的局部磁性质是一项挑战。最近,利用金刚石中氮空位中心的光探测磁共振(ODMR)技术用于原位检测压力诱导的相变。然而,由于其具有四个取向轴和温度相关的零场分裂,解释这些光探测磁共振谱仍然具有挑战性。在这里,我们研究了在 4H-碳化硅中注入硅空位缺陷的光学和自旋性质,这些缺陷表现出单轴和温度独立的零场分裂。使用这种技术,我们观察到 NdFeB 在约 7 GPa 时的磁相变,并绘制了超导体 YBaCuO 的临界温度-压力相图。这些结果突出了基于硅空位的量子传感器在高压下进行原位磁探测的潜力。

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