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Sensing and Actuating Functionality of Hybrid MEMS Combining Enhanced Chemi-Mechanical Transduction with Surface Enhanced Raman Spectroscopy

机译:混合MEMS的感测和致动功能与表面增强拉曼光谱相结合的增强化学机械转导

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The present work extends the concept of microcantilever (MC) based transducers to hybrid MEMS that integrate actuation and multiple sensing modes. Theoretical models predict significant limitations for the mechanical energy produced due to molecular interactions of conventional MCs with the environment. In order to overcome these limitations, we focus on cantilever designs and technologies of nanostructured coatings that are more compatible with fluidic MEMS and provide highly efficient molecular-driven actuation as well as additional modes of selectivity. In particular, co-evaporated Au:Ag films were used to prepare nanostructured interfaces that strongly enhance both chemimechanical transduction and Raman scattering. Acquisition of surface enhanced Raman scattering (SERS) signals generated on the cantilevers with nanostructured gold coatings provided highly specific molecular information. Additionally, highly efficient, environmentally-responsive sensor-actuator hybrids were created using MCs made of epoxy based photoresist SU-8 that were modified with hydrogel. Immobilization of colloidal silver particles in the acrylate based hydrogels provides multi-modal functionality for thee MCs. Using several alternative technolgoies, we have created MC transducers that exhibit micrometer scale deflections in response to changes in the molecular microenvironment and provide vibrational signatures of constituents in that environment. It is anticipated that these molecular-actuated MC transducers will constitute a novel platform for future biomedical devices.
机译:本工作将基于微电子(MC)的换能器的概念扩展到集成致动和多个传感模式的混合MEM。理论模型预测由于传统MCS与环境的分子相互作用导致的机械能的显着限制。为了克服这些限制,我们专注于悬臂设计和纳米结构涂层的技术,所述纳米结构涂层与流体模型更加兼容,并提供高效的分子驱动致动以及额外的选择性模式。特别地,共蒸发的Au:Ag膜用于制备强烈增强化工机械转导和拉曼散射的纳米结构界面。采集在悬臂上产生的表面增强拉曼散射(SERS)信号,其中纳米结构金涂层提供了高度特异性的分子信息。另外,使用由水凝胶改性的环氧基的光致抗蚀剂SU-8制成的MCS产生高效,环境响应的传感器致动器杂交机。基于丙烯酸酯的水凝胶中的胶体银颗粒的固定为MCS提供多模态官能度。使用几种替代技术,我们创建了响应于分子微环境的变化而表现出千分尺偏转的MC换能器,并提供该环境中的成分的振动签名。预计这些分子驱动的MC换能器将构成未来生物医学设备的新颖平台。

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