Rong Xing, Wang Mengqi, Geng Jianpei, Qin Xi, Guo Maosen, Jiao Man, Xie Yijin, Wang Pengfei, Huang Pu, Shi Fazhan, Cai Yi-Fu, Zou Chongwen, Du Jiangfeng
CAS Key Laboratory of Microscale Magnetic Resonance and Department of Modern Physics, University of Science and Technology of China (USTC), Hefei, 230026, China.
Hefei National Laboratory for Physical Sciences at the Microscale, USTC, Hefei, 230026, China.
Nat Commun. 2018 Feb 21;9(1):739. doi: 10.1038/s41467-018-03152-9.
Searching for new particles beyond the standard model is crucial for understanding several fundamental conundrums in physics and astrophysics. Several hypothetical particles can mediate exotic spin-dependent interactions between ordinary fermions, which enable laboratory searches via the detection of the interactions. Most laboratory searches utilize a macroscopic source and detector, thus allowing the detection of interactions with submillimeter force range and above. It remains a challenge to detect the interactions at shorter force ranges. Here we propose and demonstrate that a near-surface nitrogen-vacancy center in diamond can be utilized as a quantum sensor to detect the monopole-dipole interaction between an electron spin and nucleons. Our result sets a constraint for the electron-nucleon coupling, [Formula: see text], with the force range 0.1-23 μm. The obtained upper bound of the coupling at 20 μm is [Formula: see text] < 6.24 × 10.
寻找超越标准模型的新粒子对于理解物理学和天体物理学中的几个基本难题至关重要。几种假设粒子可以介导普通费米子之间奇异的自旋相关相互作用,这使得能够通过检测这些相互作用在实验室进行搜索。大多数实验室搜索使用宏观源和探测器,从而能够检测力范围在亚毫米及以上的相互作用。在更短的力范围内检测这些相互作用仍然是一个挑战。在此,我们提出并证明金刚石中的近表面氮空位中心可作为量子传感器来检测电子自旋与核子之间的单极 - 偶极相互作用。我们的结果对电子 - 核子耦合[公式:见原文]设定了一个限制,力范围为0.1 - 23μm。在20μm处获得的耦合上限为[公式:见原文]<6.24×10。