Chen Zeji, Jia Qianqian, Liu Wenli, Yuan Quan, Zhu Yinfang, Yang Jinling, Yang Fuhua
Institute of Semiconductors, Chinese Academy of Sciences, Beijing 100083, China.
Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, China.
Sensors (Basel). 2020 Dec 8;20(24):7017. doi: 10.3390/s20247017.
This work investigates the dominant energy dissipations of the multi-frequency whispering gallery mode (WGM) resonators to provide an insight into the loss mechanisms of the devices. An extensive theory for each loss source was established and experimentally testified. The squeezed film damping (SFD) is a major loss for all the WGMs at atmosphere, which is distinguished from traditional bulk acoustic wave (BAW) resonators where the high-order modes suffer less from the air damping. In vacuum, the SFD is negligible, and the frequency-dependent Akhiezer damping (AKE) has significant effects on different order modes. For low-order WGMs, the AKE is limited, and the anchor loss behaves as the dominant loss. For high-order modes with an extended nodal region, the anchor loss is reduced, and the AKE determines the values. Substantial enhancements over four times and an excellent × product up to 6.36 × 10 at 7 K were achieved.
这项工作研究了多频回音壁模式(WGM)谐振器的主要能量耗散,以深入了解这些器件的损耗机制。针对每个损耗源建立了广泛的理论并进行了实验验证。在大气环境中,挤压薄膜阻尼(SFD)是所有WGM的主要损耗,这与传统体声波(BAW)谐振器不同,在传统BAW谐振器中高阶模式受空气阻尼的影响较小。在真空中,SFD可忽略不计,而频率相关的阿基耶泽尔阻尼(AKE)对不同阶模式有显著影响。对于低阶WGM,AKE有限,锚固损耗成为主要损耗。对于具有扩展节点区域的高阶模式,锚固损耗降低,AKE决定了相关值。在7K时实现了超过四倍的大幅增强以及高达6.36×10的出色品质因数乘积。