Seo Sang-Woo, Song Youngsik, Mustakim Nafis
Department of Electrical Engineering, City College of City University of New York, New York, NY 10031 USA.
IEEE Sens J. 2023 Sep;23(17):19021-19027. doi: 10.1109/jsen.2023.3293433. Epub 2023 Jul 19.
Localized temperature sensing and control on a micron-scale have diverse applications in biological systems. We present a micron-sized hydrogel pillar array as potential temperature probes and actuators by exploiting sensitive temperature dependence of their volume change. Soft lithography-based molding processes were presented to fabricate poly N-isopropyl acrylamide (p-NIPAAm)-based hydrogel pillar array on a glass substrate. Au nanorods as light-induced heating elements were embedded within the hydrogel pillars, and near-infrared (NIR) light was used to modulate temperature in a local area. First, static responses of the micro-pillar array were characterized as a function of its temperature. It was shown that the hydrogel had a sensitive volume transition near its low critical solution temperature (LCST). Furthermore, we showed that LCST could be readily adjusted by utilizing copolymerizing with acrylamide (AAM). To demonstrate the feasibility of spatiotemporal temperature mapping and modulation using the presented pillar array, pulsed NIR light was illuminated on a local area of the hydrogel pillar array, and its responses were recorded. Dynamic temperature change in water was mapped based on the abrupt volume change characteristics of the hydrogel pillar, and its potential actuation using NIR light was successfully demonstrated. Considering that the structure can be arrayed in a two-dimensional pixel format with high spatial resolution and high sensitive temperature characteristics, the presented method and the device structure can have diverse applications to change and sense local temperatures in liquid. This is particularly useful in biological systems, where their physiological temperature can be modulated and mapped with high spatial resolution.
微米尺度的局部温度传感与控制在生物系统中有多种应用。我们通过利用其体积变化对温度的敏感依赖性,提出了一种微米尺寸的水凝胶柱阵列作为潜在的温度探针和致动器。介绍了基于软光刻的成型工艺,以在玻璃基板上制备基于聚N-异丙基丙烯酰胺(p-NIPAAm)的水凝胶柱阵列。将金纳米棒作为光诱导加热元件嵌入水凝胶柱内,并使用近红外(NIR)光来调节局部区域的温度。首先,表征了微柱阵列的静态响应与其温度的函数关系。结果表明,水凝胶在其低临界溶液温度(LCST)附近具有敏感的体积转变。此外,我们表明通过与丙烯酰胺(AAM)共聚可以很容易地调节LCST。为了证明使用所提出的柱阵列进行时空温度映射和调制的可行性,将脉冲近红外光照射在水凝胶柱阵列的局部区域,并记录其响应。基于水凝胶柱的突然体积变化特性绘制了水中的动态温度变化,并成功证明了其利用近红外光的潜在致动能力。考虑到该结构可以以高空间分辨率的二维像素格式排列并且具有高敏感温度特性,所提出的方法和器件结构在改变和感测液体中的局部温度方面可以有多种应用。这在生物系统中特别有用,在生物系统中可以以高空间分辨率调节和绘制其生理温度。