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通过水凝胶薄膜的超快纳米压印制备的湿度响应反射光栅。

Humidity Responsive Reflection Grating Made by Ultrafast Nanoimprinting of a Hydrogel Thin Film.

作者信息

Cesnik Stefan, Perrotta Alberto, Cian Alessandro, Tormen Massimo, Bergmann Alexander, Coclite Anna Maria

机构信息

Institute of Electrical Measurements and Sensor Systems, Graz University of Technology, Graz, 8010, Austria.

Italian National Research Council-Institute of Nanotechnology (CNR-NANOTEC), via Orabona 4, Bari, 70126, Italy.

出版信息

Macromol Rapid Commun. 2022 Oct;43(19):e2200150. doi: 10.1002/marc.202200150. Epub 2022 Jul 15.

DOI:10.1002/marc.202200150
PMID:35770908
Abstract

The response time of state-of-the-art humidity sensors is ≈8 s. A faster tracking of humidity change is especially required for health care devices. This research is focused on the direct nanostructuring of a humidity-sensitive polymer thin film and it is combined with an optical read-out method. The goal is to improve the response time by changing the surface-to-volume ratio of the thin film and to test a different measurement method compared to state-of-the-art sensors. Large and homogeneous nanostructured areas are fabricated by nanoimprint lithography on poly(2-hydroxyethyl methacrylate) thin films. Those thin films are made by initiated chemical vapor deposition (iCVD). To the author's knowledge, this is the first time nanoimprint lithography is applied on iCVD polymer thin films. With the imprinting process, a diffraction grating is developed in the visible wavelength regime. The optical and physicochemical behavior of the nanostructures is modeled with multi-physic simulations. After successful modeling and fabrication a first proof of concept shows that humidity dependency by using an optical detection of the first diffraction order peak is observable. The response time of the structured thin film results to be at least three times faster compared to commercial sensors.

摘要

最先进的湿度传感器的响应时间约为8秒。对于医疗保健设备来说,尤其需要更快地跟踪湿度变化。本研究聚焦于对湿度敏感的聚合物薄膜的直接纳米结构化,并将其与光学读出方法相结合。目标是通过改变薄膜的表面积与体积比来缩短响应时间,并测试一种与最先进传感器不同的测量方法。通过纳米压印光刻技术在聚(甲基丙烯酸2-羟乙酯)薄膜上制备出大面积且均匀的纳米结构化区域。这些薄膜是通过引发化学气相沉积(iCVD)制成的。据作者所知,这是首次将纳米压印光刻技术应用于iCVD聚合物薄膜。通过压印工艺,在可见波长范围内形成了衍射光栅。利用多物理场模拟对纳米结构的光学和物理化学行为进行建模。在成功建模和制造之后,首个概念验证表明,通过对一阶衍射峰进行光学检测,可以观察到湿度依赖性。结构化薄膜的响应时间比商用传感器至少快三倍。

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