MEMS热电多色光热探测器

Zekun Liu, Shuai Zhang, Erzhen Mu, Zhenhua Wu, Duo Yu, Tianyu Chen, Zhiyu Hu
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引用次数: 0

摘要

光热效应是利用太阳能最直接、最简单的方法。不同颜色的材料在光线照射下会产生不同的热效应,这将对人们的日常生活产生广泛的影响,例如服装的制作和油漆的选择。本文创新性地提出了一种利用MEMS微热电发生器(μ-TEG)来区分不同材料在光照射后的光热效应的方法。本文的重点是MEMS μ-TEG的设计和制造,其中主要采用了紫外光刻和磁控溅射等微纳制造技术。采用非接触光刻与光刻胶熔炼相结合的混合制造方法制备了电接触良好的顶电极。在5 cm*5 cm的区域,我们将46000个P-N热电单元串联在硅片上,其超薄结构提供了非常高的温度灵敏度。在我们的实验中,通过改变衬底材料的类型和颜色,研究了单色LED光照射下的光热效应。结果表明,光热效应的差异可以用来区分不同的材料。实验样品包括棉、麻、化纤和纸。每种材料包括红色、黄色、绿色和白色。采用紫外/可见光/近红外分光光度计测定样品在可见光范围内的吸光度。在室温(298K)下,在封闭的测试平台上(尽量减少空气流量),通过单色LED光源照射,可以检测到1~2 mV的开路电压,可以准确地测量和区分不同颜色和材料的样品。在光热效应温度测量和反应过程温度监测领域具有广阔的应用前景。
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MEMS thermoelecctric multi-color photo-thermal detector
The photothermal effect is the most direct and simple way to use solar energy. Different color materials have different thermal effects under light exposure, which will have wide range of influences on people’s daily life, such as the production of clothing and the choice of paint. This article innovatively proposes a way of using MEMS micro-thermoelectric generator (μ-TEG) to distinguish the photothermal effect of different materials after exposure to light. The design and manufacture of MEMS μ-TEG is the focus of this paper, in which the micro-nano manufacturing technologies such as ultraviolet lithography and magnetron sputtering are mainly used. A hybrid fabrication method combining the non-contact lithography and photoresist melting is used to prepare a top electrode with good electrical contact. In the 5 cm*5 cm area, we integrated 46000 P-N thermoelectric units in series on a silicon wafer and its ultra-thin structure offers very high temperature sensitivity. In our experiment, by changing the substrate materials’ type and color, the light-to-heat effects were studied under monochromatic LED light illumination. The results demonstrated that the difference of the photothermal effects can be used to distinguish the various materials. The experimental samples include cotton, linen, chemical fiber, and paper. Each material includes red, yellow, green, and white. For each sample, ultraviolet/visible/near infrared spectrophotometer was used to measure the absorptivity in the visible light range. At room temperature (298K) and in an enclosed test platform (to minimize air flow), the open circuit voltage of 1~2 mV can be detected by the irradiation of monochromatic LED light source, which can accurately measure and distinguish samples of different colors and materials. It has broad application prospects in the field of photothermal effect temperature measurement and reaction process temperature monitoring.
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