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UHF Micromechanical Compound-(2,4) Mode Ring Resonators With Solid-Gap Transducers

机译:具有固体间隙传感器的UHF微机械复合式(2,4)模式环形谐振器

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UHF vibrating micromechanical ring resonators with solid-filled dielectric transducer gaps (as opposed to previous air gaps) operating in a compound-(2,4) mode have been demonstrated at 979.6 MHz with Q''s on the order of 3,100 and motional resistances effectively 4.7脳 smaller than air gap counterparts under identical bias conditions. Due to their higher dielectric constant, substitution of solid dielectric materials for air or vacuum in the electrode-to-resonator gap leads to increased electromechanical coupling in capacitively transduced micromechanical resonators, which in effect generates more output current, and thus, reduces motional resistance. The advantages of using solid dielectric material as the `gap'' are multifold, as it (1) eliminates the need for the final gap release etch in the MEMS fabrication process, thereby enhancing yield; (2) lowers device impedance versus air gap renditions, allowing easier matching to other components; (3) eliminates the possibility of particles getting into an electrode-to-resonator air gap, which would otherwise pose a potential reliability issue; and (4) consolidates the resonator structure, making it less susceptible to shock. This work greatly extends the frequency of direct (as opposed to indirect) solid-gap transduced MEMS resonators, from the previous 60 MHz using a compound (2,1) mode, to now nearly 1 GHz, and in a range desired for RF front ends, using a compound (2,4) mode.
机译:已经在979.6 MHz上演示了具有以复合(2,4)模式工作的固体填充介电换能器间隙(与之前的气隙相对)的UHF振动微机械环形谐振器,其Q's约为3,100,运动阻抗为在相同的偏置条件下,比气隙对应物小4.7脳。由于其较高的介电常数,用固体介电材料代替电极与谐振器间隙中的空气或真空会导致电容式换能微机械谐振器中的机电耦合增加,实际上会产生更多的输出电流,从而降低了运动阻力。使用固态电介质材料作为“间隙”的优点是多重的,因为它(1)消除了MEMS制造过程中最终间隙释放蚀刻的需要,从而提高了成品率; (2)相对于气隙再现,降低了设备阻抗,从而使与其他组件的匹配更加容易; (3)消除了颗粒进入电极与谐振器之间的气隙的可能性,否则这将带来潜在的可靠性问题; (4)巩固了谐振器的结构,使其不易受到冲击。这项工作将直接(相对于间接)固体隙传感MEMS谐振器的频率从以前使用复合(2,1)模式的60 MHz扩展到现在的近1 GHz,并且在RF前端所需的范围内使用复合(2,4)模式结束。

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