Giribaldi Gabriel, Colombo Luca, Rinaldi Matteo
IEEE Trans Ultrason Ferroelectr Freq Control. 2023 Oct;70(10):1201-1212. doi: 10.1109/TUFFC.2023.3312913. Epub 2023 Oct 17.
This article reports on 30% scandium-doped AlN (ScAlN) lateral field-excited (LFE) cross-sectional Lame' mode resonators (CLMRs) with unprecedented performance in the 6-20 GHz range. By combining high-crystallinity 30% ScAlN piezoelectric thin films, a lithographic tunability of the resonance frequency, and a simple three-mask post-CMOS compatible fabrication process, we propose a technology platform that can enable the mass production of low-loss, wideband, and compact microacoustic filtering devices spanning a wide spectrum portion on the same chip for the next-generation radio frequency front ends (RFFEs) of handsets. This article demonstrates a successful scaling of the microacoustic technology well beyond the sub-6-GHz fifth-generation (5G) band, as well as the outstanding capabilities of high-crystallinity 30% ScAlN piezoelectric layers in delivering high-quality factor ( Q ) and high-electromechanical coupling ( k ) resonators, notably exceeding the state of the art in terms of relevant figures of merit (FOMs). Furthermore, we experimentally investigate the impact of geometrical parameters, such as tethering configuration and width-over-length ratio on the devices' 3-dB quality factor ( [Formula: see text]), power linearity (PL), and temperature coefficient of frequency (TCF). By adopting a statistical approach for data analysis, we determine the optimal geometry to maximize the Q value. Moreover, we experimentally demonstrate that a fully tethered device's configuration ensures superior PL, lower TCF, and higher device yield and select that as the best design tradeoff between all the variables under consideration. Finally, we discuss a further scaling of LFE CLMRs, both in terms of higher doping levels in the piezoelectric layer, in order to enhance the performance of microacoustic filters, and in terms of higher operation frequencies, in order to reach and cover the mm-wave spectrum.
本文报道了掺钪30%的氮化铝(ScAlN)横向场激发(LFE)截面拉梅模式谐振器(CLMR),其在6-20GHz范围内具有前所未有的性能。通过结合高结晶度的30% ScAlN压电薄膜、共振频率的光刻可调性以及简单的三掩膜后CMOS兼容制造工艺,我们提出了一个技术平台,该平台能够大规模生产低损耗、宽带且紧凑的微声学滤波器件,这些器件可在同一芯片上覆盖宽频谱部分,用于手机的下一代射频前端(RFFE)。本文展示了微声学技术成功扩展到6GHz以下的第五代(5G)频段之外,以及高结晶度的30% ScAlN压电层在提供高品质因数(Q)和高机电耦合(k)谐振器方面的卓越能力,在相关品质因数(FOM)方面显著超越了现有技术水平。此外,我们通过实验研究了几何参数(如束缚配置和宽长比)对器件3dB品质因数([公式:见原文])、功率线性度(PL)和频率温度系数(TCF)的影响。通过采用统计方法进行数据分析,我们确定了使Q值最大化的最佳几何结构。此外,我们通过实验证明,完全束缚的器件配置可确保卓越的PL、更低的TCF以及更高的器件成品率,并将其选为所有考虑变量之间的最佳设计折衷方案。最后,我们讨论了LFE CLMR在压电层更高掺杂水平方面的进一步扩展,以提高微声学滤波器的性能,以及在更高工作频率方面的扩展,以达到并覆盖毫米波频谱。