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Surface plasmon resonance-based highly sensitive optical touch sensor with a hybrid noise rejection scheme

机译:基于表面等离子体共振的高灵敏度光学触摸传感器,具有混合噪声抑制方案

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摘要

A surface plasmon resonance (SPR)-based optical touch sensor structure is proposed that provides high switch sensitivity and requires a weak activating force. Our proposed SPR-based optical touch sensor is arranged in a compact Kretschmann-Raether configuration in which the prism acting as our sensor head is coated with a metal nanofilm. Our optical-based noise rejection scheme relies on wavelength filtering, spatial filtering, and high reflectivity of the metal nanofilm, whereas our electrical-based noise reduction is obtained by means of an electrical signal filtering process. In our experimental proof of concept, a visible laser diode at a 655 nm centered wavelength and a prism made from BK7 with a 50 nm thick gold layer on the touching surface are used, showing a 7.85 dB optical contrast ratio for the first touch. An estimated weak mechanical force of <0.1 N is also observed that sufficiently activates the desired electrical load. It is tested for 51 operations without sensor malfunction under typical and very high illumination of 342 and 3000 lx, respectively. In this case, a measured average optical contrast of 0.80 dB is obtained with a +-0.47 dB fluctuation, implying that the refractive index change in a small 3.2percent of the overall active area is enough for our SPR-based optical touch sensor to function properly. Increasing optical contrast in our SPR-based optical touch sensor can be accomplished by using a higher polarization-extinction ratio and a narrower-bandwidth optical beam. A controlled environment and gold-coated surface using the thin-film sputtering technique can help improve the reliability and the durability of our SPR-based optical touch sensor. Other key features include ease of implementation, prevention of a light beam becoming incident on the user, and the ability to accept both strong and weak activating forces.
机译:提出了一种基于表面等离子体共振(SPR)的光学触摸传感器结构,该结构可提供高开关灵敏度并需要较弱的激活力。我们提出的基于SPR的光学触摸传感器以紧凑的Kretschmann-Raether配置进行布置,其中用作我们传感器头的棱镜涂有金属纳米膜。我们基于光学的噪声抑制方案依赖于金属纳米膜的波长滤波,空间滤波和高反射率,而基于电的噪声降低是通过电信号滤波过程实现的。在我们的实验概念验证中,使用了中心波长为655 nm的可见激光二极管和由BK7制成的棱镜,该棱镜在触摸表面上具有50 nm厚的金层,显示出第一次触摸时的光学对比度为7.85 dB。还观察到估计的<0.1 N的弱机械力足以激活所需的电负载。它分别在342和3000 lx的典型和非常高的照明条件下进行了51次操作而没有传感器故障的测试。在这种情况下,测得的平均光学对比度为0.80 dB,波动范围为+ -0.47 dB,这意味着在我们整个基于SPR的光学触摸传感器上,折射率变化在整个有效面积的3.2%内就足够了正确地。通过使用更高的偏振消光比和更窄的带宽光束,可以在基于SPR的光学触摸传感器中提高光学对比度。使用薄膜溅射技术的受控环境和镀金表面可帮助提高我们基于SPR的光学触摸传感器的可靠性和耐用性。其他关键特征包括易于实施,防止光束入射到用户以及能够接受强和弱激活力。

著录项

  • 来源
    《Applied Optics》 |2006年第1期|p.172-177|共6页
  • 作者单位

    National Electronics and Computer Technology Center (NECTEC), 112 Thailand Science Park, Phahonyothin Road, Klong 1, Klong Luang, Pathumthani 12120, Thailand;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 计量学;
  • 关键词

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