中国物理B ›› 2024, Vol. 33 ›› Issue (2): 24202-024202.doi: 10.1088/1674-1056/ad0772
Qing-Yun Ye(叶青云)1, Ya-Wen Xue(薛雅文)2, Fei-Yue He(何飞越)1, Xu-Tong Zhao(赵旭彤)1, Yu-Chen Bian(卞雨辰)1, Wen-Tao Lu(卢文韬)1, Jin-Xu Wang(王金旭)1, Hong-Hao Chen(陈鸿浩)1, Sheng-Kai Xia(夏圣开)3, Ming-Jing Zeng(曾明菁)4, and Guan-Xiang Du(杜关祥)1,†
Qing-Yun Ye(叶青云)1, Ya-Wen Xue(薛雅文)2, Fei-Yue He(何飞越)1, Xu-Tong Zhao(赵旭彤)1, Yu-Chen Bian(卞雨辰)1, Wen-Tao Lu(卢文韬)1, Jin-Xu Wang(王金旭)1, Hong-Hao Chen(陈鸿浩)1, Sheng-Kai Xia(夏圣开)3, Ming-Jing Zeng(曾明菁)4, and Guan-Xiang Du(杜关祥)1,†
摘要: A tightly linked dual ring antenna is designed, and it is specifically tailored for uniformly coupling the microwave magnetic field to the nitrogen-vacancy (NV) center. The designed antenna operates at a center frequency of about 2.87 GHz, with a bandwidth of around 200 MHz, allowing it to address multiple resonance peaks in the optically detected magnetic resonance (ODMR) spectrum in an external magnetic field. Moreover, the antenna generates a fairly uniform magnetic field in a range with a radius of 0.75 mm. High resolution imaging of the magnetic field distribution on the surface of the antenna is conducted by using a fiber diamond probe. We also investigate the effect of magnetic field uniformity on the linewidth of ODMR, so as to provide insights into reducing the inhomogeneous broadening of ODMR.
中图分类号: (Optical implementations of quantum information processing and transfer)