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Investigation of the electrochemical features of carbon-coated TiO2 anode for application in lithium-ion battery using high voltage LiNi0.5Mn1.5O4 spinel cathode

机译:锂离子电池LiNi0.5Mn1.5O4尖晶石正极用碳包覆TiO2阳极的电化学特性研究

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摘要

In this paper we propose a carbon-coated, nano-sized TiO2 anode for application in lithium-ion batteries. The lithiation-delithiation process characteristic of this mixed anatase/rutile material has been investigated in detail, in order to define the optimal operating voltage range and to further enhance the electrode cycle life. Ex-situ x-ray diffraction measurements demonstrate that the rutile phase becomes electrochemically inactive toward lithium intercalation after the first cycle and remains inactive by cycles. The TiO2 electrochemical behavior is studied by means of various techniques, including galvanostatic cycling and potentiodynamic cycling with galvanostatic acceleration. We show that the combination of the TiO2 anode with a high-voltage, LiNi0.5Mn1.5O4 spinel cathode results in an advanced li-ion battery able to exchange reversibly a capacity higher than 100 mAh/g for over 70 cycles at the high rate of 1C. Considering an average working voltage of about 2.9 V, the theoretical energy content of the cell here disclosed is about 300 Wh kg(-1). Taking into account the energy content and high safety level of the full cell, due to the use of a TiO2-based electrode, by operating at a voltage value well far from the one associated to the common electrolyte decomposition, i.e. about 1.7 V, we may propose the anode here studied as suitable material for advanced energy storage systems. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在本文中,我们提出了一种用于锂离子电池的碳包覆纳米尺寸TiO2阳极。为了确定最佳工作电压范围并进一步延长电极循环寿命,已经对这种锐钛矿/金红石混合材料的锂化-脱锂工艺特性进行了详细研究。异位X射线衍射测量表明,金红石相在第一个循环后对锂的嵌入失去电化学活性,并在循环中保持惰性。通过各种技术研究了TiO2的电化学行为,包括恒电流循环和恒电流加速的恒电位循环。我们证明了TiO2阳极与高电压LiNi0.5Mn1.5O4尖晶石阴极的组合产生了一种先进的锂离子电池,该电池能够以高倍率可逆地交换超过100 mAh / g的容量超过70个循环1C。考虑到约2.9V的平均工作电压,此处公开的电池的理论能量含量为约300Wh kg(-1)。考虑到整个电池的能量含量和高安全性,由于使用了基于TiO2的电极,通过在远离与普通电解质分解相关的电压值(即约1.7 V)下工作,可以建议将此处研究的阳极用作高级能量存储系统的合适材料。 (C)2016 Elsevier Ltd.保留所有权利。

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