Institut FEMTO-ST, CNRS, Université de Bourgogne Franche-Comté, 15B Avenue des Montboucons, F-25030, Besançon Cedex, France.
Nat Commun. 2019 Oct 8;10(1):4583. doi: 10.1038/s41467-019-12492-z.
Manipulation of mechanical motion at the micro-scale has been attracting continuous attention, leading to the successful implementation of various strategies with potential impact on classical and quantum information processing. We propose an approach based on the interplay between a pair of localised mechanical resonators and travelling surface acoustic waves (SAW). We demonstrate the existence of a two-sided interaction, allowing the use of SAW to trigger and control the resonator oscillation, and to manipulate the elastic energy distribution on the substrate through resonator coupling. Observation of the vectorial structure of the resonator motion reveals the existence of two coupling regimes, a dipole-dipole-like interaction at small separation distance versus a surface-mediated mechanical coupling at larger separation. These results illustrate the potential of this platform for coherent control of mechanical vibration at a resonator level, and reciprocally for manipulating SAW propagation using sub-wavelength elements.
微尺度机械运动的操控一直备受关注,这促使人们成功实施了各种策略,这些策略可能会对经典和量子信息处理产生影响。我们提出了一种基于一对局域机械谐振器和行波表面声波(SAW)相互作用的方法。我们证明了存在双边相互作用,允许使用 SAW 来触发和控制谐振器的振荡,并通过谐振器耦合来操纵衬底上的弹性能量分布。观察谐振器运动的矢量结构表明存在两种耦合模式,小分离距离下的偶极子-偶极子类似相互作用与较大分离距离下的表面介导机械耦合。这些结果说明了该平台在谐振器级别的机械振动相干控制方面的潜力,并且可以反过来使用亚波长元件来操纵 SAW 的传播。