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基于穹顶启发的透明质酸水凝胶封装,形成仿生 MEMS 流量传感器。

Cupula-Inspired Hyaluronic Acid-Based Hydrogel Encapsulation to Form Biomimetic MEMS Flow Sensors.

机构信息

Center for Environmental Sensing and Modeling (CENSAM) IRG, Singapore-MIT Alliance for Research and Technology (SMART), 1 Create Way, Create Tower, Singapore 138602, Singapore.

School of Mechanical and Aerospace Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798, Singapore.

出版信息

Sensors (Basel). 2017 Jul 28;17(8):1728. doi: 10.3390/s17081728.

Abstract

Blind cavefishes are known to detect objects through hydrodynamic vision enabled by arrays of biological flow sensors called neuromasts. This work demonstrates the development of a MEMS artificial neuromast sensor that features a 3D polymer hair cell that extends into the ambient flow. The hair cell is monolithically fabricated at the center of a 2 μm thick silicon membrane that is photo-patterned with a full-bridge bias circuit. Ambient flow variations exert a drag force on the hair cell, which causes a displacement of the sensing membrane. This in turn leads to the resistance imbalance in the bridge circuit generating a voltage output. Inspired by the biological neuromast, a biomimetic synthetic hydrogel cupula is incorporated on the hair cell. The morphology, swelling behavior, porosity and mechanical properties of the hyaluronic acid hydrogel are characterized through rheology and nanoindentation techniques. The sensitivity enhancement in the sensor output due to the material and mechanical contributions of the micro-porous hydrogel cupula is investigated through experiments.

摘要

盲眼洞穴鱼通过生物流动传感器(称为神经丘)阵列实现的流体动力学视觉来探测物体。本工作展示了一种 MEMS 人工神经丘传感器的开发,该传感器具有延伸到环境流中的 3D 聚合物毛细胞。毛细胞在 2 µm 厚的硅膜的中心通过全桥偏置电路进行光刻制造。环境流动变化对毛细胞施加阻力,导致传感膜发生位移。这反过来导致桥接电路中的电阻不平衡,从而产生电压输出。受生物神经丘的启发,在毛细胞上加入了仿生合成水凝胶穹顶。通过流变学和纳米压痕技术对透明质酸水凝胶的形态、溶胀行为、孔隙率和机械性能进行了表征。通过实验研究了由于微多孔水凝胶穹顶的材料和机械贡献而导致传感器输出灵敏度增强的情况。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b642/5580308/57d3e177af2c/sensors-17-01728-g001.jpg

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