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首页> 外文期刊>Applied optics >Two-dimensional refractive index modulation by phased array transducers in acousto-optic deflectors
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Two-dimensional refractive index modulation by phased array transducers in acousto-optic deflectors

机译:分界阵列传感器在声光偏转器中的阵列换能器的二维折射率调制

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摘要

Acousto-optic deflectors are photonic devices that are used for scanning high-power laser beams in advanced microprocessing applications such as marking and direct writing. The operation of conventional deflectors mostly relies on one-dimensional sinusoidal variation of the refractive index in an acousto-optic medium. Sometimes static phased array transducers, such as step configuration or planar configuration transducer architecture, are used to tilt the index modulation planes for achieving higher performance and higher resolution than a single transducer AO device. However, the index can be modulated in two dimensions, and the modulation plane can be tilted arbitrarily by creating dynamic phase gratings in the medium using phased array transducers. This type of dynamic two-dimensional acousto-optic deflector can provide better performance using, for example, a large deflection angle and high diffraction efficiency. This paper utilizes an ultrasonic beam steering approach to study the two-dimensional strain-induced index modulation due to the photoelastic effect. The modulation is numerically simulated, and the effects of various parameters, such as the operating radiofrequency of the transducers, the ultrasonic beam steering angle, and different combinations of pressure on each element of the transducer array, are demonstrated. (C) 2017 Optical Society of America
机译:声光偏转器是光子器件,用于扫描高功率激光束,在先进的微处理应用中,例如标记和直接写入。传统偏转器的操作主要依赖于声光介质中折射率的一维正弦变化。有时,静态相控阵列传感器,例如步骤配置或平面配置传感器架构,用于倾斜索引调制平面,以实现比单个换能器AO器件更高的性能和更高分辨率。然而,索引可以用两个维度调制,并且可以通过使用相位阵列换能器在介质中创建动态相位光栅来任意地倾斜调制平面。这种类型的动态二维声光偏转器可以使用例如大的偏转角和高衍射效率来提供更好的性能。本文利用超声波束转向方法研究由于光弹性效果引起的二维应变诱导的指标调制。对调制进行了数值模拟,并且示出了各种参数的效果,例如换能器的操作射频,超声波束转向角和换能器阵列的每个元件上的压力的不同组合。 (c)2017年光学学会

著录项

  • 来源
    《Applied optics》 |2017年第3期|共7页
  • 作者单位

    Univ Cent Florida Coll Opt &

    Photon CREOL POB 162700 Orlando FL 32816 USA;

    Intel Assembly &

    Test Technol Dev 5000 W Chandler Blvd Chandler AZ 85226 USA;

    Intel Components Res 5000 W Chandler Blvd Chandler AZ 85226 USA;

    Intel Assembly &

    Test Technol Dev 5000 W Chandler Blvd Chandler AZ 85226 USA;

    Univ Cent Florida Mech &

    Aeronaut Engn &

    Mat Sci Engn Dept Coll Opt &

    Photon CREOL POB 162700 Orlando FL 32816 USA;

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  • 正文语种 eng
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