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Electrochemical, transport and thermal investigation of novel electrolytes and electrodes for lithium-ion and magnesium-ion batteries.

机译:用于锂离子和镁离子电池的新型电解质和电极的电化学,运输和热学研究。

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摘要

Energy conversion and energy storage are becoming indispensable in today's society due to the increased demand for immobile and mobile power. Cathode material is considered as the only source of energy in the electrochemical cell for secondary battery and thus the quantity of energy of the battery is largely determined by the type of the cathode's chemistry and its amount used as well. Electrolyte has also a significant impact on the electrochemical performance of the battery. Its properties such as ionic conductivity and transference number play a substantial role in the transport of energy between the cathode and the anode. In addition to the importance of energy, safety is another critical element in the determination of the battery's quality. Cathode material and non-aqueous electrolyte are two major dimensions of the safety in the design of secondary battery.;Nowadays, lithium-ion batteries are widely used as power source in many applications; however, their maximum energy density (400Wh/Kg) is not sufficient enough to meet the demands of high power applications such as electric vehicles owing to the limited driving range caused by current lithium-ion batteries. Furthermore, safety concerns have been raised after several incidents have been reported recently. Therefore, improving the safety of lithium-ion battery systems through the formulation of nonflammable electrolytes and synthesizing stable electrodes are highly required for high thermal stability. In contrast, fulfilling the long driving range requires other battery systems that provide higher energy density. The large energy density of Mg metal (3832 mAh/cm3) opens a new horizon toward future potential energy storage system, which is a very promising candidate to overcome the long driving range issue and thus needs to be investigated for its potential use as rechargeable battery.;In this present thesis, thermal stability of lithium-ion cells is examined through the use of Fluoro Ethylene Carbonate (FEC) as non-flammable co-solvent with Ethylene Carbonate (EC) on lithium-nickel-cobalt-aluminum-oxide cathode (LiNi0.8Co0.15A10.05O2). Optimization of the cathode composition (active material, conducting agent, binder) was also examined for high energy and power. Lithium iron phosphate (LiFePO 4) was chosen for this study because of its high thermal stability against the liberation of oxygen. Electrolytic properties of a magnesium organohaloaluminate electrolyte were investigated in order to understand their role and effect on the magnesium deposition process. Electrochemical and thermal study of bismuth material as a potential negative electrode for magnesium-ion cell under the use of magnesium organohaloaluminate electrolyte was also performed.
机译:由于对固定和移动电源的需求增加,在当今社会,能量转换和能量存储已变得不可缺少。阴极材料被认为是用于二次电池的电化学电池中的唯一能源,因此,电池的能量很大程度上取决于阴极化学物质的类型及其用量。电解质对电池的电化学性能也有重要影响。其性质,例如离子电导率和转移数,在阴极和阳极之间的能量传输中起着重要作用。除了能源的重要性外,安全性是确定电池质量的另一个关键因素。阴极材料和非水电解质是二次电池设计中安全性的两个主要方面。如今,锂离子电池已在许多应用中广泛用作电源;然而,由于目前的锂离子电池驱动范围有限,它们的最大能量密度(400Wh / Kg)不足以满足电动汽车等高功率应用的需求。此外,在最近报告了几起事件之后,已经引发了安全隐患。因此,为了高的热稳定性,非常需要通过不燃电解质的配制和合成稳定的电极来提高锂离子电池系统的安全性。相反,要实现较长的行驶里程,则需要其他提供更高能量密度的电池系统。镁金属的高能量密度(3832 mAh / cm3)为未来的潜在储能系统开辟了新视野,这是克服长距离行驶问题的非常有前途的候选人,因此需要对其作为可充电电池的潜在用途进行研究在本论文中,通过在锂镍钴铝氧化物阴极上使用碳酸氟乙烯酯(FEC)和碳酸乙烯酯(EC)作为不易燃的共溶剂来检验锂离子电池的热稳定性。 (LiNi0.8Co0.15A10.05O2)。还检查了阴极组成(活性材料,导电剂,粘合剂)的优化,以获取高能量和高功率。本研究选择磷酸铁锂(LiFePO 4),因为它对氧气的释放具有很高的热稳定性。为了了解它们对镁沉积过程的作用和影响,研究了有机卤化铝镁电解质的电解性能。还进行了在有机镁铝铝酸盐电解质作用下铋材料作为镁离子电池潜在负极的电化学和热学研究。

著录项

  • 作者

    Benmayza, Aadil.;

  • 作者单位

    Illinois Institute of Technology.;

  • 授予单位 Illinois Institute of Technology.;
  • 学科 Chemical engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 154 p.
  • 总页数 154
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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