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Optical piezoelectric transducer for nano-ultrasonics

机译:纳米超声光学压电换能器

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摘要

Piezoelectric semiconductor strained layers can be treated as piezoelectric transducers to generate nanometer-wavelength and THz-frequency acoustic waves. The mechanism of nano-acoustic wave (NAW) generation in strained piezoelectric layers, induced by femtosecond optical pulses, can be modeled by a macroscopic elastic continuum theory. The optical absorption change of the strained layers modulated by NAW through quantum-confined Franz-Keldysh (QCFK) effects allows optical detection of the propagating NAW. Based on these piezoelectric-based optical principles, we have designed an optical piezoelectric transducer (OPT) to generate NAW. The optically generated NAW is then applied to one-dimensional (1-D) ultrasonic scan for thickness measurement, which is the first step toward multidimensional nano-ultrasonic imaging. By launching a NAW pulse and resolving the returned acoustic echo signal with femtosecond optical pulses, the thickness of the studied layer can be measured with <1 nm resolution. This nano-structured OPT technique will provide the key toward the realization of nano-ultrasonics, which is analogous to the typical ultrasonic techniques but in a nanometer scale.
机译:压电半导体应变层可被视为压电换能器,以产生纳米波长和太赫兹频率的声波。飞秒光脉冲在应变压电层中产生纳米声波(NAW)的机理可以用宏观弹性连续理论来模拟。 NAW通过量子限制的Franz-Keldysh(QCFK)效应调制的应变层的光吸收变化使得可以对传播的NAW进行光学检测。基于这些基于压电的光学原理,我们设计了一种光学压电换能器(OPT)以生成NAW。然后将光学生成的NAW应用于一维(1-D)超声扫描以进行厚度测量,这是迈向多维纳米超声成像的第一步。通过发射NAW脉冲并用飞秒光脉冲解析返回的声回波信号,可以以<1 nm的分辨率测量研究层的厚度。这种纳米结构的OPT技术将为实现纳米超声提供关键,这与典型的超声技术类似,但在纳米尺度上。

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