Gulseren Melisa Ekin, Segovia-Fernandez Jeronimo, Chang Yi, Wang Xuetian, Gomez-Diaz J Sebastian
Electrical and Computer Engineering Department, University of California, Davis, CA, USA.
Kilby Labs, Texas Instruments, Santa Clara, CA, USA.
Ultrasonics. 2025 Jan;145:107463. doi: 10.1016/j.ultras.2024.107463. Epub 2024 Sep 8.
We explore the source of nonlinearities in Aluminum Nitride (AlN) Contour Mode Resonators (CMRs) operating in the Very High Frequency (VHF) range. We demonstrate that the red-shift of the resonance frequency found in VHF CMRs when the input RF power increases is due to nonlinear stiffness appearing from self-heating, and variable damping due to geometric nonlinearities. Moreover, we find a linear relationship between the variable damping coefficient and the resonator quality factor (Q). Such nonlinear mechanisms are modeled using a spring-mass-damper physical system and, in the electrical domain, a modified Butterworth-Van Dyke (MBVD) circuit where the nonlinear stiffness and variable damping are captured by a charge-dependent motional capacitor and a charge-dependent motional resistor, respectively. Detailed guidelines are provided to accurately analyze nonlinear CMRs using full-wave numerical simulations based on a finite-element method. Such simulations allow us to isolate the influence of each independent nonlinear mechanism and establish a relation between variable damping and geometric nonlinearities. Circuit and full-wave numerical simulations are in good agreement with measured data from fabricated 225 MHz CMRs exhibiting different Q. Finally, we exploit nonlinearities in high-Q CMRs to generate frequency combs at the MHz range opening the door to new exciting applications in telecommunication and sensing.
我们探究了工作在甚高频(VHF)范围内的氮化铝(AlN)轮廓模式谐振器(CMR)中非线性的来源。我们证明,在VHF CMR中,当输入射频功率增加时,谐振频率的红移是由于自热产生的非线性刚度以及几何非线性导致的可变阻尼。此外,我们发现可变阻尼系数与谐振器品质因数(Q)之间存在线性关系。此类非线性机制使用弹簧 - 质量 - 阻尼物理系统进行建模,在电学领域,则使用改进的巴特沃斯 - 范戴克(MBVD)电路进行建模,其中非线性刚度和可变阻尼分别由电荷依赖的运动电容和电荷依赖的运动电阻来体现。我们提供了详细的指导方针,以便基于有限元方法使用全波数值模拟来准确分析非线性CMR。此类模拟使我们能够分离每个独立非线性机制的影响,并建立可变阻尼与几何非线性之间的关系。电路和全波数值模拟与所制造的具有不同Q值的225 MHz CMR的测量数据高度吻合。最后,我们利用高Q值CMR中的非线性来产生兆赫兹范围内的频率梳,为电信和传感领域的新的激动人心的应用打开了大门。