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通过纸张模板法对LiTiO进行表面改性以增强锂离子电池中的界面锂电荷转移。

Surface modified LiTiO by paper templated approach for enhanced interfacial Li charge transfer in Li-ion batteries.

作者信息

Kawade Ujjwala V, Jayswal Manish S, Ambalkar Anuradha A, Kadam Sunil R, Panmand Rajendra P, Ambekar Jalinder D, Kulkarni Milind V, Kale Bharat B

机构信息

Centre for Materials for Electronics Technology (C-MET), Ministry of Electronics and Information Technology (MeitY) Panchavati Pune 411008 India

Department of Physics, Savitribai Phule Pune University Ganeshkhind Pune 411007 India.

出版信息

RSC Adv. 2018 Nov 14;8(67):38391-38399. doi: 10.1039/c8ra07953f.

Abstract

The LiTiO (LTO) and lithium silicate (LS) surface modified LTO have been demonstrated by a unique paper templated method. Comparative study of structural characterization with electrochemical analysis was demonstrated for pristine and modified LiTiO. Structural and morphological study shows the existence of the cubic spinel structure with highly crystalline 250-300 nm size particles. The LS modified LTO shows the deposition of 10-20 nm sized LS nanoparticles on cuboidal LTO. Further, X-ray photoelectron spectroscopy (XPS) confirms the existence of LiSiO (LS) in the modified LTO. The electrochemical performance was investigated by cyclic voltammetry (CV), electrochemical impedance spectroscopy (EIS) and galvanostatic charge-discharge. The modified LTO with 2% LS (LTS2) exhibited excellent rate capability compare to pristine LTO 182 mA h g specific capacity at a current rate, 50 mA g with remarkable cycling stability up to 1100 cycles at a current rate of 800 mA g. The lithium ion full cell of modified LTO with LS as an anode and LiCoO as a cathode exhibited a remarkably reversible specific capacity 110 mA h g. Both electronic and ionic conductivities of pristine LTO are observed to be enhanced by incorporation of appropriate amount of LS in LTO due to a larger surface contact at the interface of electrode and electrolyte. More significantly, the versatile paper templated synthesis approach of modified LTO with LS provides densely packed highly crystalline particles. Additionally, it exhibits lower Warburg coefficient and higher Li ion diffusion coefficient which in turn accelerate the interfacial charge transfer process, which is responsible for enhanced stable electrochemical performance. The detailed mechanism is expressed and elaborated for better understanding of enhanced electrochemical performance due to the surface modification.

摘要

通过一种独特的纸模板法制备了LiTiO(LTO)和硅酸锂(LS)表面改性的LTO。对原始和改性LiTiO进行了结构表征与电化学分析的对比研究。结构和形态学研究表明存在立方尖晶石结构,颗粒尺寸高度结晶,为250 - 300nm。LS改性的LTO显示在长方体LTO上沉积了尺寸为10 - 20nm的LS纳米颗粒。此外,X射线光电子能谱(XPS)证实改性LTO中存在LiSiO(LS)。通过循环伏安法(CV)、电化学阻抗谱(EIS)和恒电流充放电研究了电化学性能。与原始LTO相比,含2% LS的改性LTO(LTS2)表现出优异的倍率性能,在电流速率为50 mA g时比容量为182 mA h g,在电流速率为800 mA g时循环稳定性高达1100次。以LS改性LTO为阳极、LiCoO为阴极的锂离子全电池表现出显著的可逆比容量,为110 mA h g。由于电极和电解质界面处更大的表面接触,在LTO中掺入适量的LS后,原始LTO的电子和离子电导率均得到增强。更重要的是,用LS对LTO进行改性的通用纸模板合成方法提供了紧密堆积的高度结晶颗粒。此外,它表现出较低的Warburg系数和较高的锂离子扩散系数,这反过来加速了界面电荷转移过程,这是增强稳定电化学性能的原因。为更好地理解由于表面改性而增强的电化学性能,阐述了详细的机理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/da21/9089846/aabed2764ad2/c8ra07953f-f1.jpg

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