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首页> 外文期刊>microsystems & nanoengineering >Mechanical memory operations in piezotransistive GaN microcantilevers using Au nanoparticle-enhanced photoacoustic excitation
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Mechanical memory operations in piezotransistive GaN microcantilevers using Au nanoparticle-enhanced photoacoustic excitation

机译:使用Au纳米颗粒增强光声激发的压电透体GaN微悬臂中的机械存储器操作

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Nonlinear oscillations in micro- and nanoelectromechanical systems have emerged as an exciting research area in recent years due to their promise in realizing low-power, scalable, and reconfigurable mechanical memory and logic devices. Here, we report ultralow-power mechanical memory operations utilizing the nonlinear oscillation regime of GaN microcantilevers with embedded piezotransistive AlGaN/GaN heterostructure field effect transistors as highly sensitive deflection transducers. Switching between the high and low oscillatory states of the nonlinear oscillation regime was demonstrated using a novel phase-controlled opto-mechanical excitation setup, utilizing a piezo actuator and a pulsed laser as the primary and secondary excitation sources, respectively. Laser-based photoacoustic excitation was amplified through plasmonic absorption in Au nanoparticles deposited on a transistor. Thus, the minimum switching energy required for reliable memory operations was reduced to less than a picojoule (pJ), which translates to one of the lowest ever reported, when normalized for mass.
机译:近年来,微纳米机电系统中的非线性振荡已成为一个令人兴奋的研究领域,因为它们有望实现低功耗、可扩展和可重构的机械存储器和逻辑器件。在这里,我们报告了利用GaN微悬臂的非线性振荡机制的超低功耗机械存储器操作,嵌入式压电晶体管AlGaN/GaN异质结构场效应晶体管作为高灵敏度偏转传感器。使用一种新型相控光机械激励装置,分别利用压电陶瓷致动器和脉冲激光器作为主激励源和次激发源,演示了非线性振荡状态的高低振荡状态之间的切换。基于激光的光声激发通过沉积在晶体管上的金纳米颗粒中的等离子体吸收被放大。因此,可靠内存操作所需的最小开关能量减少到小于皮焦耳 (pJ),当对质量进行归一化时,这转化为有史以来报道的最低开关能量之一。

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