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Multifunctional three-dimensional macroporous nanoelectronic networks for smart materials

机译:用于智能材料的多功能三维大孔纳米电子网络

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摘要

Seamless and minimally invasive integration of 3D electronic circuitry within host materials could enable the development of materials systems that are self-monitoring and allow for communication with external environments. Here, we report a general strategy for preparing ordered 3D interconnected and addressable macroporous nanoelectronic networks from ordered 2D nanowire nanoelectronic precursors, which are fabricated by conventional lithography. The 3D networks have porosities larger than 99%, contain approximately hundreds of addressable nanowire devices, and have feature sizes from the 10-μm scale (for electrical and structural interconnections) to the 10-nm scale (for device elements). The macroporous nanoelectronic networks were merged with organic gels and polymers to form hybrid materials in which the basic physical and chemical properties of the host were not substantially altered, and electrical measurements further showed a >90% yield of active devices in the hybrid materials. The positions of the nanowire devices were located within 3D hybrid materials with ∼14-nm resolution through simultaneous nanowire device photocurrent/confocal microscopy imaging measurements. In addition, we explored functional properties of these hybrid materials, including (i) mapping time-dependent pH changes throughout a nanowire network/agarose gel sample during external solution pH changes, and (ii) characterizing the strain field in a hybrid nanoelectronic elastomer structures subject to uniaxial and bending forces. The seamless incorporation of active nanoelectronic networks within 3D materials reveals a powerful approach to smart materials in which the capabilities of multifunctional nanoelectronics allow for active monitoring and control of host systems.
机译:将3D电子电路无缝无缝整合到主体材料中,可以实现自我监控并允许与外部环境进行通信的材料系统的开发。在这里,我们报告了一种一般的策略,用于从有序的2D纳米线纳米电子前体制备有序的3D互连且可寻址的大孔纳米电子网络,该网络是通过常规光刻技术制造的。 3D网络的孔隙率大于99%,包含大约数百个可寻址的纳米线设备,并且特征尺寸从10微米尺度(用于电气和结构互连)到10纳米尺度(对于设备元件)。大孔纳米电子网络与有机凝胶和聚合物合并形成杂化材料,其中主体的基本物理和化学性质没有实质性改变,电学测量进一步表明杂化材料中有源器件的产率> 90%。通过同时进行纳米线器件的光电流/共聚焦显微镜成像测量,纳米线器件的位置位于分辨率约为14nm的3D混合材料中。此外,我们探索了这些杂化材料的功能特性,包括(i)在外部溶液pH变化期间绘制整个纳米线网络/琼脂糖凝胶样品中随时间变化的pH变化,以及(ii)表征杂化纳米电子弹性体结构中的应变场承受单轴和弯曲力。有源纳米电子网络在3D材料中的无缝结合揭示了一种智能材料的强大方法,其中多功能纳米电子的功能允许对主机系统进行主动监视和控制。

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