Author Affiliations
Abstract
1 CAS Key Laboratory of Quantum Information, , Hefei 230026, China
2 CAS Center for Excellence in Quantum Information and Quantum Physics, , Hefei 230026, China
The ultracold molecule is a promising candidate for versatile quantum tasks due to its long-range interaction and rich internal rovibrational states. With the help of the cavity quantum electrodynamics (QED) effects, an optical cavity can be employed to increase the efficiency of the formation of the photoassociated molecules and offers a non-demolition detection of the internal states of molecules. Here, we demonstrate the production of the high-finesse optical fiber microcavity for the Rb2 molecule cavity QED experiment, which includes the fabrication of fiber-based cavity mirrors, testing, and the assembly of ultra-high vacuum-compatible optical fiber microcavity. The optical fiber microcavity offers high cooperativity between cavity mode and ultracold molecule and paves the way for the study of molecule cavity QED experimental research.
optical fiber microcavity ultracold molecule molecule cavity quantum electrodynamics 
Chinese Optics Letters
2022, 20(12): 122702
作者单位
摘要
四川农业大学信息工程学院,四川 雅安 625000
针对近年来鸟类啄食对农业生产带来的损失,通过实时检测鸟类优化传统驱鸟器开关策略,提出了一种基于YOLOv3检测鸟类的目标检测算法。该方法对YOLOv3网络中特征融合进行改进,将SE模块嵌入进主干网络的Darknet53网络中,关注不同通道特征的重要程度。采用自适应空间特征融合(ASFF)增强网络中特征金字塔网络(FPN)的特征融合,提升各尺度的检测能力。引入CIOU边界框回归损失函数,将预测框和目标框在有重叠甚至包含等情况考虑进去,使目标框回归变得更加准确和稳定。改进后的YOLOv3模型在自制鸟类数据集上的精度均值(AP)达到96.65%,单张图像检测耗时仅为0.058 s,相比于原YOLOv3模型在检测速度变化不大的情况下AP提高了2.54百分点。该改进方法能达到很好的实时性和更佳的检测精度,对农田防治鸟害优化驱鸟器开关策略提供依据。
视觉光学 目标检测 YOLOv3 SE模块 特征融合 边界框回归损失函数 
激光与光电子学进展
2022, 59(2): 0233001
Author Affiliations
Abstract
1 CAS Key Laboratory of Quantum Information, University of Science and Technology of China, Hefei 230026, China
2 Synergetic Innovation Centre in Quantum Information and Quantum Physics, University of Science and Technology of China, Hefei 230026, China
Generation of a cavity-enhanced nondegenerate narrow-band photon pair source is a potential way to realize a perfect photonic quantum interface for a hybrid quantum network. However, to ensure the high quality of the photon source, the pump laser for the narrow-band photon source should be generated in a special way. Here, we experimentally generate the blue 453 nm laser with a sum frequency generation process in a periodically poled lithium niobate waveguide. A 13 mW laser at 453 nm can be achieved with a low-power 880 nm laser and 935 nm laser input, and the internal conversion efficiency is 21.6% after calculation. The frequency of a 453 nm laser is stabilized by locking two pump lasers on one ultrastable optical cavity. The single pass process without employing cavity enhancement can ensure a good robustness of the whole system.
270.5585 Quantum information and processing 140.3613 Lasers, upconversion 
Chinese Optics Letters
2017, 15(12): 122701

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