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Molecularly mediated thin film assembly of nanoparticles on flexible devices: Electrical conductivity versus device strains in different gas/vapor environment

机译:柔性设备上纳米粒子的分子介导薄膜组装:不同气体/蒸汽环境下的电导率与设备应变的关系

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The ability to precisely control nanoparticle-enabled electrical devices for applications involving conformal wrapping/bending adaptability in various complex sensing environments requires an understanding of the electrical correlation with the device strain and exposure to the molecular environment. This report describes novel findings of an investigation of molecularly mediated thin film assembly of gold nanoparticles on flexible chemiresistor devices under different device strains and exposure molecules. Both theoretical and experimental data have revealed that the electrical conductivity of the nanoparticle assembly depends on a combination of the device strain and the exposure molecules. Under no device strain, the electrical conductivity is sensitive to the molecular nature in the exposure environment, revealing a clear increase in electrical conductivity with the dielectric constant of vapor molecules. Under small device strains, the electrical conductivity is shown to respond sensitively to the strain directions (tensile vs compressive strain) and also to the dielectric constant of the vapor molecules in a way resembling the characteristic under no device strain. Under large device strains, the electrical conductivity is shown to respond to the difference in dielectric constant of the vapor molecules but, more significantly, to the device tensile and compressive strains than those under small device strains. This combination of device strain and dielectric characteristic is also dependent on the orientation of the microelectrode patterns with respect to the device strain direction, a finding that has important implications to the design of flexible arrays for a complex sensing environment.
机译:在各种复杂的传感环境中,针对涉及保形包裹/弯曲适应性的应用,精确控制具有纳米颗粒功能的电子设备的能力,需要了解与设备应变和暴露于分子环境的电相关性。该报告描述了在不同的设备应变和暴露分子下,柔性化学反应器设备上金纳米颗粒的分子介导薄膜组装研究的新发现。理论和实验数据均表明,纳米颗粒组件的电导率取决于器件应变和暴露分子的组合。在没有器件应变的情况下,电导率对暴露环境中的分子性质敏感,显示出随着蒸汽分子的介电常数,电导率明显增加。在较小的设备应变下,显示出电导率以类似于无设备应变下的特性的方式对应变方向(拉伸应变与压缩应变)以及蒸气分子的介电常数敏感地响应。在较大的设备应变下,与较小的设备应变下的电导率相比,电导率显示出对蒸气分子介电常数的差异做出响应,但更重要的是对设备的拉伸应变和压缩应变做出了响应。器件应变和介电特性的这种组合还取决于微电极图案相对于器件应变方向的定向,这一发现对于复杂感测环境下的柔性阵列设计具有重要意义。

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