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Nanoscale pillar hypersonic surface phononic crystals

机译:纳米级柱体超音速表面声子晶体

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摘要

We report on nanoscale pillar-based hypersonic phononic crystals in single crystal Z-cut lithium niobate. The phononic crystal is formed by a two-dimensional periodic array of nearly cylindrical nanopillars 240 nm in diameter and 225 nm in height, arranged in a triangular lattice with a 300-nm lattice constant. The nanopillars are fabricated by the recently introduced nanodomain engineering via laser irradiation of patterned chrome followed by wet etching. Numerical simulations and direct measurements using Brillouin light scattering confirm the simultaneous existence of nonradiative complete surface phononic band gaps. The band gaps are found below the sound line at hypersonic frequencies in the range 2-7 GHz, formed from local resonances and Bragg scattering. These hypersonic structures are realized directly in the piezoelectric material lithium niobate enabling phonon manipulation at significantly higher frequencies than previously possible with this platform, opening new opportunities for many applications in plasmonic, optomechanic, microfluidic, and thermal engineering.
机译:我们在单晶Z形切割铌酸锂中报告了基于纳米柱的高超声速声子晶体。声子晶体由直径为240 nm,高度为225 nm的近似圆柱形纳米柱的二维周期阵列形成,排列成具有300 nm晶格常数的三角形晶格。通过最近引入的纳米域工程,通过图案化铬的激光辐照,然后进行湿蚀刻,来制造纳米柱。使用布里渊光散射的数值模拟和直接测量证实了非辐射完整表面声子带隙的同时存在。在由局部共振和布拉格散射形成的2-7 GHz范围内的高超声速频率下,在声线下方发现了带隙。这些高超音速结构直接在压电材料铌酸锂中实现,能够以比以前使用该平台可能更高的频率进行声子操纵,为等离子,光机电,微流体和热工程中的许多应用打开了新的机遇。

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