...
首页> 外文期刊>Sensors and Actuators, A. Physical >A novel langasite crystal microbalance instrumentation for UV sensing application
【24h】

A novel langasite crystal microbalance instrumentation for UV sensing application

机译:一种用于紫外传感应用的新型兰加石晶体微量天平仪器

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

In this paper, we present a novel low-power UV sensor instrumentation based on ZnO thin-film and langasite crystal microbalance (LCM) composite resonator. The design of this sensor utilizes the exceptional transient response characteristics of thickness shear mode langasite crystal and UV sensitivity of annealed ZnO thin film. Our comparative transient analysis of langasite and quartz crystals shows that langasite crystal has high stability and fast relaxation times, and requires a fraction of excitation power in comparison to that of quartz. Upon investigating the equivalent circuit components, we discovered that high value of motional capacitance of LCM resulted in these contrasting transient responses in LCM and QCM. This high motional capacitance can be further attributed to the high electromechanical coupling coefficient (K-2) of piezoelectric langasite crystal. Motivated by these observed characteristics, we proposed a novel sensor instrumentation that is simple yet effective in simultaneous measurements of the frequency, dissipation factor, and the amplitude of oscillation of a LCM. Moreover, our measurements allow for direct monitoring of any change in piezoelectricity of ZnO thin film. Our new measurement approach uses a one-shot pulse instead of conventional sinusoidal waveform to drive the crystal, which allows for simple instrumentation and requires very low input power. The transient response of the crystal shows that the crystal oscillates at its fundamental frequency and the amplitude of oscillation decays exponentially. From the recorded decay curve, the frequency of the freely oscillating crystal, and other important crystal parameters were calculated. We have utilized this mechanism to demonstrate highly sensitive ZnO thin film and LCM based UV sensor. Highest sensitivity of 35.8 mu W/cm(2) was observed for the LCM coated with 400 nm ZnO film. Additionally, the influence of UV on the piezoelectric output of ZnO thin film was also characterized by monitoring the DC offset of the output oscillations. Our findings in this work opens scope for developing low-power acoustic sensors with significant implications towards self-powering sensors. (C) 2016 Elsevier B.V. All rights reserved.
机译:在本文中,我们提出了一种基于ZnO薄膜和蓝铁矿晶体微天平(LCM)复合谐振器的新型低功耗紫外线传感器。该传感器的设计利用了厚度剪切模式硅锰矿晶体的出色瞬态响应特性和退火ZnO薄膜的UV敏感性。我们对兰加石和石英晶体的比较瞬态分析表明,兰加石晶体具有较高的稳定性和快速的弛豫时间,并且与石英相比,其激发功率要小。通过研究等效电路组件,我们发现LCM的动电容值较高,会导致LCM和QCM中出现这些相反的瞬态响应。这种高的运动电容可进一步归因于压电硅酸铜晶体的高机电耦合系数(K-2)。基于这些观察到的特性,我们提出了一种新颖的传感器仪器,该仪器既简单又有效,可同时测量LCM的频率,耗散因数和振荡幅度。此外,我们的测量可以直接监控ZnO薄膜的压电性的任何变化。我们的新测量方法使用单脉冲而不是传统的正弦波形来驱动晶体,这使仪器操作简单并且需要非常低的输入功率。晶体的瞬态响应表明,晶体以其基频振荡,并且振荡幅度呈指数衰减。根据记录的衰减曲线,可以计算出自由振荡晶体的频率以及其他重要的晶体参数。我们已经利用这种机制演示了高度敏感的ZnO薄膜和基于LCM的紫外线传感器。对于涂有400 nm ZnO薄膜的LCM,观察到的最高灵敏度为35.8μW / cm(2)。此外,还通过监测输出振荡的直流偏移来表征紫外线对ZnO薄膜压电输出的影响。我们在这项工作中的发现为开发对自供电传感器具有重大意义的低功率声学传感器打开了广阔的空间。 (C)2016 Elsevier B.V.保留所有权利。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号