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Efficient metamaterial-based plasmonic sensors for micromixing evaluation

机译:高效的基于超材料的等离子传感器,用于微混合评估

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摘要

Recent developments in microscale flow mixing provide a promising alternative for lab-on-a-chip applications. However, accurate estimation of microscale mixing performance inside microfluidic channels remains a significant challenge. This process is limited by inevitable image aberrations and the distortion of microscopic imaging systems. In this study, we numerically present metamaterial-based optical sensors composed of periodic subwavelength H-shaped metallic resonators to evaluate the mixing efficiency of microfluidic mixers. Mixing performance was detected by exciting metamaterial sensors with near-infrared (NIR) light without additional optical couplers. Thus, the detection system was inexpensive and easy to operate. Notably, a large localized electromagnetic field up to 2 x 10(9) could be excited, whereas wavelengths of incident light matched the resonant conditions of metallic metamaterial arrays using the presented concept. The resulting figure of merit in terms of the detection sensitivity versus the full width at half maximum of the resonant peak reached a considerable value of 1.1. This study provides a promising detection method with sound sensing performance and the ability to be integrated with micromixing devices.
机译:微型混流技术的最新发展为片上实验室应用提供了有希望的替代方法。然而,准确估计微流体通道内部的微尺度混合性能仍然是一项重大挑战。该过程受到不可避免的图像像差和显微成像系统畸变的限制。在这项研究中,我们以数值方式提出了由超材料构成的光学传感器,该传感器由周期性的亚波长H形金属谐振器组成,以评估微流体混合器的混合效率。混合性能是通过使用近红外(NIR)光激发超材料传感器而无需附加光耦合器来检测的。因此,该检测系统便宜且易于操作。值得注意的是,可以激发高达2 x 10(9)的大局部电磁场,而入射光的波长使用提出的概念与金属超材料阵列的谐振条件匹配。在检测灵敏度与谐振峰的一半最大值处的全宽之间得到的品质因数达到了可观的1.1。这项研究提供了一种有前途的检测方法,该方法具有声音感应性能并且可以与微混合设备集成。

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