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Using Tobacco mosaic virus template for the fabrication of three-dimensional hierarchical microbattery electrodes with high energy and high power density

机译:使用烟草花叶病毒模板制备高能量,高功率密度的三维分层微电池电极

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摘要

We present a novel approach for the fabrication of lithium-ion microbattery electrodes which deliver high energy and high power density. The key enabling technology is the use of self-assembled Tobacco mosaic virus (TMV) nanoforests as a template for active battery materials. The self-assembling TMV is a genetically modified biological nanorod with increased metal binding properties for enhanced manufacturability. High energy density is achieved due to the active surface area increase within a given footprint by combining TMV with three-dimensional (3D) microfabricated structures. The TMV nanostructure enables high power density through larger electrode/electrolyte contact area and faster charge transport. The electrodes consist of an array of electroplated gold micropillars. The pillars are coated with the self-assembled nanoscale TMV template and subsequently metalized in-place. Active battery material (V_2O_5) is conformally deposited using atomic layer deposition (ALD) on the hierarchical microano network. Electrochemical testing of these electrodes indicates a 3-5 fold increase in energy density, compared to the TMV-templated etectrodes without micropillars, without increasing footprint area or reducing rate performance. Further increase in energy density can be achieved by increasing surface area of 3D microelements as demonstrated by fabrication and electrochemical testing of the electrodes with hollow gold micropillars. Scaling up energy density by increasing active material thickness beyond 100 run revealed some loss in surface area which highlighted the importance of nanoscale engineering for achieving maximum energy and power density in energy storage systems.
机译:我们提出了一种新型的锂离子微电池电极制造方法,该电极可提供高能量和高功率密度。关键的使能技术是使用自组装的烟草花叶病毒(TMV)纳米林作为活性电池材料的模板。自组装TMV是一种经过基因修饰的生物纳米棒,具有增强的金属结合特性,可增强可制造性。通过将TMV与三维(3D)微细加工结构结合在一起,可以在给定的占位面积内增加有效表面积,从而实现了高能量密度。 TMV纳米结构通过更大的电极/电解质接触面积和更快的电荷传输实现了高功率密度。电极由一系列电镀金微柱组成。支柱涂有自组装的纳米级TMV模板,然后就地金属化。活性电池材料(V_2O_5)使用原子层沉积(ALD)在分层的微/纳米网络上共形沉积。这些电极的电化学测试表明,与不带微柱的TMV模板等离子棒相比,能量密度增加了3-5倍,而没有增加占地面积或降低速率性能。能量密度的进一步增加可以通过增加3D微量元素的表面积来实现,如带有空心金微柱的电极的制造和电化学测试所示。通过将活性材料厚度增加到100行程以上来扩大能量密度,发现表面积有所损失,这突出了纳米级工程对于在储能系统中实现最大能量和功率密度的重要性。

著录项

  • 来源
    《Nanoepitaxy: Materials and devices V》|2013年|88200T.1-88200T.8|共8页
  • 会议地点 San Diego CA(US)
  • 作者单位

    MEMS Sensors and Actuators Laboratory, Department of Electrical and Computer Engineering, University of Maryland, College Park, Maryland, 20742, USA,Institute for Systems Research, University of Maryland, College Park, Maryland, 20742, USA;

    MEMS Sensors and Actuators Laboratory, Department of Electrical and Computer Engineering, University of Maryland, College Park, Maryland, 20742, USA,Institute for Systems Research, University of Maryland, College Park, Maryland, 20742, USA;

    MEMS Sensors and Actuators Laboratory, Department of Electrical and Computer Engineering, University of Maryland, College Park, Maryland, 20742, USA,Institute for Systems Research, University of Maryland, College Park, Maryland, 20742, USA;

    MEMS Sensors and Actuators Laboratory, Department of Electrical and Computer Engineering, University of Maryland, College Park, Maryland, 20742, USA;

    Institute for Bioscience and Biotechnology Research, Department of Plant Sciences and Landscape Architecture, University of Maryland, College Park, Maryland, 20742, USA;

    MEMS Sensors and Actuators Laboratory, Department of Electrical and Computer Engineering, University of Maryland, College Park, Maryland, 20742, USA,Institute for Systems Research, University of Maryland, College Park, Maryland, 20742, USA;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Tobacco mosaic virus; lithium-ion microbatteries; 3D architecture; nanostructuring; biotemplating;

    机译:烟草花叶病毒;锂离子微型电池; 3D架构;纳米结构生物模板;
  • 入库时间 2022-08-26 13:44:31

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