Bao Fei-Hong, Wu Xue-Qian, Zhou Xin, Wu Qi-Die, Zhang Xiao-Sheng, Bao Jing-Fu
School of Electronic Science and Engineering, University of Electronic Science and Technology of China, Chengdu 61173, China.
Yingcai Honors College, University of Electronic Science and Technology of China, Chengdu 61173, China.
Micromachines (Basel). 2019 Sep 19;10(9):626. doi: 10.3390/mi10090626.
Phononic crystals (PnC) are a remarkable example of acoustic metamaterials with superior wave attenuation mechanisms for piezoelectric micro-electro-mechanical systems (MEMS) resonators to reduce the energy dissipation. Herein, a spider web-like PnC () is proposed to sufficiently isolate the wave vibration. Finite-element analysis is performed to gain insight into the transmission property of finite PnC, and band characteristics by infinite periods. In comparison with the circle hole PnC at a similar bandgap, due to its already very lightweight PnC structure compared with previously reported PnCs, the proposed PnC offers a significantly lighter weight, smaller lattice constant, and greater energy leakage inhibition. More specifically, the resonator with the plate as the anchoring substrate exhibited a quality factor as high as 66569.7 at 75.82 MHz.
声子晶体(PnC)是声学超材料的一个显著例子,具有卓越的波衰减机制,可用于压电微机电系统(MEMS)谐振器,以减少能量耗散。在此,提出了一种蜘蛛网状的PnC()以充分隔离波振动。进行有限元分析以深入了解有限PnC的传输特性以及无限周期的能带特性。与具有相似带隙的圆孔PnC相比,由于其与先前报道的PnC相比已经非常轻的PnC结构,所提出的PnC具有显著更轻的重量、更小的晶格常数和更强的能量泄漏抑制能力。更具体地说,以板作为锚定衬底的谐振器在75.82 MHz时表现出高达66569.7的品质因数。