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首页> 外文期刊>ACS applied materials & interfaces >Flexible and Hierarchical 3D Interconnected Silver Nanowires/Cellulosic Paper-Based Thermoelectric Sheets with Superior Electrical Conductivity and Ultrahigh Thermal Dispersion Capability
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Flexible and Hierarchical 3D Interconnected Silver Nanowires/Cellulosic Paper-Based Thermoelectric Sheets with Superior Electrical Conductivity and Ultrahigh Thermal Dispersion Capability

机译:柔性和分层3D互连的银纳米线/纤维素纸的热电薄片,具有卓越的导电性和超高热分散能力

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摘要

To date, various electronic devices have been strategically fabricated, and simultaneous realization of high electrical conductivity, sensing property, and heat-conducting property by a simple, efficient, and accurate approach is significant but still challenging. Here, cellulosic fiber supported 3D interconnected silver nanowire (AgNW) networks with hierarchical structures are rationally designed to achieve excellent electrical conductivity and superior thermal dispersion capability. In particular, thermal annealing at the junctions enables both phonon and electron transfer as well as impedes interfacial slippage. In the current study, the AgNW/cellulosic paper with the low Ag content (1.55 wt %) exhibits a low sheet resistance of 0.51 Ω sq~(–1). More importantly, the AgNW/cellulosic paper-based flexible strain sensor has been reasonably developed, which can be applied to monitor various microstructural changes and human motions with high sensitivity and robust stability (fast response/relaxation time of ~100 ms and high stability >2000 bending–stretching cycles). The AgNW/cellulosic paper-based device also displays efficient thermal dispersion property, which offers exciting opportunities for thermal management application. Furthermore, the obtained hybrid paper exhibits superior heat dispersion capacity for thermal management devices. Overall, uniform dispersion and 3D interconnected junctions of AgNW among the fibers inside the cellulosic papers lead to the combination of high mechanical strength, highly efficient electrical conductivity, and ultrahigh heat dispersion property. The AgNW/cellulosic paper has promising potentials in the flexible and wearable sensing elements, thermal management materials, and artificial intelligence devices.
机译:迄今为止,通过简单,高效,准确的方法同时制造各种电子设备,并同时实现高导电性,传感性能和导热性能是显着的,但仍然具有挑战性。这里,具有分层结构的纤维素纤维支撑的3D互连银纳米线(AGNW)网络具有合理的设计,以实现优异的导电性和优异的热分散能力。特别地,在接头处的热退火使得声子和电子转移以及阻碍界面滑动。在目前的研究中,具有低Ag含量(1.55wt%)的AgNw /纤维素纸表现出0.51Ωsq〜(-1)的低薄层电阻。更重要的是,合理开发了AgNW /纤维素纸的柔性应变传感器,可应用于监测具有高灵敏度和鲁棒稳定性的各种微观结构变化和人体运动(快速响应/弛豫时间〜100 ms,高稳定性> 2000弯曲拉伸循环)。 AgNW /纤维素纸的装置还显示出高效的热分散性,为热管理应用提供了令人兴奋的机会。此外,所获得的混合纸具有卓越的热管理装置的热分散能力。纤维素纸内纤维中AgNW的总体,均匀的分散和3D互连结,导致高机械强度,高效电导率和超高热分散性的组合。 AgNW /纤维素纸具有柔性和可穿戴传感元件,热管理材料和人工智能设备的潜力。

著录项

  • 来源
    《ACS applied materials & interfaces》 |2019年第42期|共12页
  • 作者单位

    Plant Fiber Research Center State Key Laboratory of Pulp and Paper Engineering School of Light Industry and Engineering South China University of Technology;

    Plant Fiber Research Center State Key Laboratory of Pulp and Paper Engineering School of Light Industry and Engineering South China University of Technology;

    Plant Fiber Research Center State Key Laboratory of Pulp and Paper Engineering School of Light Industry and Engineering South China University of Technology;

    Plant Fiber Research Center State Key Laboratory of Pulp and Paper Engineering School of Light Industry and Engineering South China University of Technology;

    Plant Fiber Research Center State Key Laboratory of Pulp and Paper Engineering School of Light Industry and Engineering South China University of Technology;

    Plant Fiber Research Center State Key Laboratory of Pulp and Paper Engineering School of Light Industry and Engineering South China University of Technology;

    Plant Fiber Research Center State Key Laboratory of Pulp and Paper Engineering School of Light Industry and Engineering South China University of Technology;

    Plant Fiber Research Center State Key Laboratory of Pulp and Paper Engineering School of Light Industry and Engineering South China University of Technology;

    SDIC Biotech Investment CO. Ltd;

    Plant Fiber Research Center State Key Laboratory of Pulp and Paper Engineering School of Light Industry and Engineering South China University of Technology;

    Plant Fiber Research Center State Key Laboratory of Pulp and Paper Engineering School of Light Industry and Engineering South China University of Technology;

    Department of Food Science and Engineering Jinan University;

    Plant Fiber Research Center State Key Laboratory of Pulp and Paper Engineering School of Light Industry and Engineering South China University of Technology;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    silver nanowire; cellulosic paper; electrical conductivity; thermal dispersion; thermal annealing;

    机译:银纳米线;纤维素纸;电导率;热分散;热退火;

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