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Paper-Based Lithium-Ion Batteries using Carbon Nanotube-Coated Wood Microfiber Current Collectors

机译:使用碳纳米管涂覆的木材超细纤维集电器的纸基锂离子电池

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摘要

The prevalent applications of energy storage devices have incited wide-spread efforts on production of thin, flexible, and light-weight lithium-ion batteries. In this work, lithium-ion batteries using novel flexible paper-based current collectors have been developed. The paper-based current collectors were fabricated from carbon nanotube (CNT)-coated wood microfibers ( CNT-microfiber paper). This thesis presents the fabrication of the CNT-microfiber paper using wood microfibers, coating electrode materials, design and assemblies of battery, testing methodologies, and experimental results and analyses.;Wood microfibers were coated with carbon nanotubes and poly(3,4-ethylenedioxythiophene) (PEDOT) through an electrostatic layer-by-layer nanoassembely process and formed into a sheet, CNT-microfiber paper. The CNT loading of the fabricated paper was measured 10.1 mug/cm 2 subsequently considered.;Electrode material solutions were spray-coated on the CNT-microfiber paper to produce electrodes for the half and full-cell devices. The CNT current collector consists of a network structure of cellulose microfibers at the micro-scale, with micro-pores filled with the applied conductive electrode materials reducing the overall internal resistance for the cell. A bending test revealed that the paper-based electrodes, compared to metal ones, incurred fewer damages after 20 bends at an angle of 300°. The surface fractures on the paper-based electrodes were shallow and contained than metallic-based electrodes. The micro-pores in CNT-microfiber paper structure provides better adherence to the active material layer to the substrate and inhibits detachment while bending.;Half-cells and full-cells using lithium cobalt oxide (LCO), lithium titanium oxide (LTO), and lithium magnesium oxide (LMO) were fabricated and tested. Coin cell assembly and liquid electrolyte was used. The capacities of half-cells were measured 150 mAh/g with LCO, 158 mAh/g with LTO, and 130 mAh/g with LMO. The capacity of the LTO/LCO full-cell also was measured 126 mAh/g at C/5 rate. The columbic efficiency of the LTO/LCO full-cell was measured 84% for the first charging cycle that increased to 96% after second cycle. The self-discharge test of the full-cell after charging to 2.7 V at C/5 current rate is showed a stable 2 V after 90 hours.;The capacities of the developed batteries at lower currents are comparable to the metallic electrode-based devices, however, the capacities were observed to drop at higher currents. This makes the developed paper-based batteries more suitable for low current applications, such as, RFID tags, flexible electronics, bioassays, and displays. The capacities of the batteries at higher current can be improved by enhancing the conductivity of the fibers, which is identified as the future work. Furthermore, fabrication of an all solid state battery using solid electrolyte is also identified as the future work of this project.
机译:能量存储设备的普遍应用引起了人们对薄型,柔性和轻型锂离子电池生产的广泛努力。在这项工作中,已经开发了使用新型柔性纸基集电器的锂离子电池。纸基集电器是由涂有碳纳米管(CNT)的木微纤维(CNT-微纤维纸)制成的。本文介绍了使用木材微纤维制造碳纳米管超细纤维纸,涂覆电极材料,电池的设计和组装,测试方法以及实验结果和分析。;木材微纤维涂有碳纳米管和聚(3,4-乙撑二氧噻吩) (PEDOT)通过静电逐层纳米组装工艺制成片状CNT超细纤维纸。随后测得的人造纸的CNT负载为10.1杯/ cm 2。将电极材料溶液喷涂在CNT超细纤维纸上,以生产半电池和全电池设备的电极。 CNT集电器由微尺度的纤维素微纤维的网络结构组成,微孔填充了所施加的导电电极材料,从而降低了电池的整体内部电阻。弯曲测试表明,与金属电极相比,纸基电极在300°的角度弯曲20次后损坏较少。纸基电极上的表面裂缝较金属基电极浅,且较容易控制。 CNT超细纤维纸结构中的微孔可更好地将活性材料层粘附到基材上,并在弯曲时抑制分离。;半电池和全电池使用钴酸锂(LCO),锂钛酸锂(LTO),制备并测试了锂镁氧化物(LMO)。使用纽扣电池组件和液体电解质。半电池的容量用LCO测量为150 mAh / g,用LTO测量为158 mAh / g,用LMO测量为130 mAh / g。 LTO / LCO全电池的容量在C / 5速率下也测得为126 mAh / g。在第一个充电周期中,LTO / LCO全电池的电量效率为84%,在第二个充电周期后增加至96%。在C / 5电流速率下充电至2.7 V后,全电池的自放电测试显示90小时后稳定为2 V .;开发的电池在较低电流下的容量可与基于金属电极的设备媲美但是,观察到容量在高电流下会下降。这使开发的纸基电池更适合于低电流应用,例如RFID标签,柔性电子产品,生物测定和显示器。可以通过增强纤维的导电性来提高电池在更高电流下的容量,这被认为是未来的工作。此外,使用固态电解质制造全固态电池也被确定为该项目的未来工作。

著录项

  • 作者

    Aliahmad, Nojan.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Nanotechnology.
  • 学位 M.S.E.C.E.
  • 年度 2013
  • 页码 88 p.
  • 总页数 88
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:42:20

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