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Piezotronic effect in AlGaN/AlN/GaN heterojunction nanowires used as a flexible strain sensor

机译:用作柔性应变传感器的AlGaN / ALN / GaN异质结纳米线中的压电效应

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摘要

1D semiconductor nanowires (NWs) have been extensively studied in recent years due to the predominant mechanical flexibility caused by a large surface-to-volume ratio and unique electrical and optical properties induced by the 1D quantum confinement effect. Herein, we use a top-down two-step preparation method to synthesize AlGaN/AlN/GaN heterojunction NWs with controllable size. A single NW is transferred to a flexible poly(ethylene terephthalate) substrate and fixed by indium tin oxide electrodes to form an ohmic contact for the strain sensor. An external mechanical stress is introduced to study the performance of the fabricated piezotronic strain sensor. The gauge factor is as high as 30 under compressive or tensile stress, which indicates a high sensitivity of the strain sensor. Periodic strain tests show the high stability and repeatability of the sensor. The working mechanism of the strain sensor is investigated and systematically analyzed under compressive and tensile strain. Here, we describe a strain sensor that shows a great application potential in wearable integrated circuits, in health-monitoring devices, and in artificial intelligence.
机译:近年来,由于由1D量子限制效果引起的大量的机械柔韧性,近年来,近年来已经过度研究了1D半导体纳米线(NWS)。在此,我们使用自上而下的两步制备方法来合成具有可控尺寸的AlGaN / Aln / GaN异质结NWS。单个NW被转移到柔性聚(乙烯对苯二甲酸乙二醇酯)基底上,并通过氧化铟锡电极固定,形成用于应变传感器的欧姆接触。引入外部机械应力以研究制造的压电菌株传感器的性能。压缩因子在压缩或拉伸应力下高达30,表示应变传感器的高灵敏度。周期性应变试验显示了传感器的高稳定性和可重复性。在压缩和拉伸应变下研究和系统地研究了应变传感器的工作机制。在这里,我们描述了一种应变传感器,其在卫生监测设备中具有可穿戴集成电路和人工智能的可穿戴电路中的巨大应用势。

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