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高度灵活、多像素化的热敏感智能窗户,由坚韧水凝胶制成。

Highly Flexible, Multipixelated Thermosensitive Smart Windows Made of Tough Hydrogels.

机构信息

Department of Chemical and Materials Engineering, University of Alberta , Edmonton, Alberta T6G1H9, Canada.

Institute for Reconstructive Sciences in Medicine (iRSM), Misericordia Community Hospital , Edmonton, Alberta T5R4H5, Canada.

出版信息

ACS Appl Mater Interfaces. 2017 Sep 27;9(38):33100-33106. doi: 10.1021/acsami.7b08907. Epub 2017 Sep 13.

Abstract

In a cold night, a clear window that will become opaque while retaining the indoor heat is highly desirable for both privacy and energy efficiency. A thermally responsive material that controls both the transmittance of solar radiance (predominantly in the visible and near-infrared wavelengths) and blackbody radiation (mainly in the mid-infrared) can realize such windows with minimal energy consumption. Here, we report a smart coating made from polyampholyte hydrogel (PAH) that transforms from a transparency state to opacity to visible radiation and strengthens opacity to mid-infrared when lowering the temperature as a result of phase separation between the water-rich and polymer-rich phases. To match a typical temperature fluctuation during the day, we fine-tune the phase transition temperature between 25 and 55 °C by introducing a small amount of relatively hydrophobic monomers (0.1 to 0.5 wt % to PAH). To further demonstrate an actively controlled, highly flexible, and high-contrast smart window, we build in an array of electric heaters made of printed elastomeric composite. The multipixelated window offers rapid switching, ∼70 s per cycle, whereas the device can withstand high strain (up to 80%) during operations.

摘要

在寒冷的夜晚,对于隐私和节能来说,一种既能保持室内热量又能使透明窗户变得不透明的热响应材料是非常理想的。一种可以控制太阳辐射(主要在可见光和近红外波长范围内)和黑体辐射(主要在中红外范围内)透射率的智能涂层,可以通过富水相与富聚合物相之间的相分离,在最小能耗的情况下实现这种窗户。在这里,我们报告了一种由聚两性电解质水凝胶(PAH)制成的智能涂层,它可以从透明状态转变为不透明状态,以可见光辐射,并且当温度降低时,由于富水相与富聚合物相之间的相分离,它可以增强对中红外辐射的不透明度。为了匹配白天典型的温度波动,我们通过引入少量相对疏水性单体(PAH 的 0.1 至 0.5wt%)来微调相转变温度在 25 至 55°C 之间。为了进一步展示一个主动控制的、高度灵活的、高对比度的智能窗户,我们构建了一个由印刷弹性体复合材料制成的电加热器阵列。多像素化的窗户提供了快速切换,每个周期约 70 秒,而该装置在操作过程中可以承受高达 80%的高应变。

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