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基于悬臂梁的传感器,利用具有高灵敏度的衍射光学元件测量相对湿度。

Cantilever-Based Sensor Utilizing a Diffractive Optical Element with High Sensitivity to Relative Humidity.

机构信息

School of Physics and Clinical and Optometric Sciences, Technological University Dublin Grangegorman, D07EWV4 Dublin, Ireland.

Centre for Industrial and Engineering Optics, Technological University Dublin, FOCAS Research Institute, Camden Row, D08 CKP1 Dublin, Ireland.

出版信息

Sensors (Basel). 2021 Mar 1;21(5):1673. doi: 10.3390/s21051673.

Abstract

High-sensitivity and simple, low-cost readout are desirable features for sensors independent of the application area. Micro-cantilever sensors use the deflection induced by the analyte presence to achieve high-sensitivity but possess complex electronic readouts. Current holographic sensors probe the analyte presence by measuring changes in their optical properties, have a simpler low-cost readout, but their sensitivity can be further improved. Here, the two working principles were combined to obtain a new hybrid sensor with enhanced sensitivity. The diffractive element, a holographically patterned thin photopolymer layer, was placed on a polymer (polydimethylsiloxane) layer forming a bi-layer macro-cantilever. The different responses of the layers to analyte presence lead to cantilever deflection. The sensitivity and detection limits were evaluated by measuring the variation in cantilever deflection and diffraction efficiency with relative humidity. It was observed that the sensitivity is tunable by controlling the spatial frequency of the photopolymer gratings and the cantilever thickness. The sensor deflection was also visible to the naked eye, making it a simple, user-friendly device. The hybrid sensor diffraction efficiency response to the target analyte had an increased sensitivity (10-fold when compared with the cantilever or holographic modes operating independently), requiring a minimum upturn in the readout complexity.

摘要

高灵敏度和简单、低成本的读出是独立于应用领域的传感器的理想特性。微悬臂梁传感器利用分析物存在引起的挠度来实现高灵敏度,但具有复杂的电子读出。当前的全息传感器通过测量其光学性质的变化来探测分析物的存在,具有更简单、低成本的读出,但它们的灵敏度可以进一步提高。在这里,将两种工作原理结合起来,获得了一种具有增强灵敏度的新型混合传感器。衍射元件是一个全息图案化的薄光聚合物层,放置在聚合物(聚二甲基硅氧烷)层上,形成双层大悬臂梁。由于各层对分析物存在的不同响应导致悬臂梁发生偏转。通过测量悬臂梁挠度和衍射效率随相对湿度的变化来评估灵敏度和检测限。结果表明,通过控制光聚合物光栅的空间频率和悬臂梁的厚度可以调节灵敏度。传感器的挠度也可以用肉眼看到,使其成为一种简单、用户友好的设备。与独立工作的悬臂梁或全息模式相比,混合传感器对目标分析物的衍射效率响应具有更高的灵敏度(提高了 10 倍),而读出复杂性只需最小的提高。

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