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AN AUGER ELECTRON SPECTROSCOPIC AND KINETIC STUDY OF THE REACTION OF SULFUR DIOXIDE WITH ATOMICALLY CLEAN LITHIUM SURFACES.

机译:二氧化硫与原子清洁锂表面反应的俄歇电子光谱和动力学研究。

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摘要

The growth of the layer formed on atomically clean lithium metal upon exposure to SO(,2) gas is sequentially studied by controlling the quantity of gas reacted with the surface in a specially constructed vacuum system. A Fast Fourier Transform algorithm for the removal of instrumental broadening, and quantized and inelastic electron loss processes from the background of an Auger spectrum is presented. The deconvolved peaks for the S(LMM) and O(KKL) valence transitions are used to determine the molecular composition of the layer at each stage of its formation. The associated peak areas give the quantity of SO(,2) reacted with the surface and the relative amounts of sulfur and oxygen present in each layer. The results indicate that two distinct layers of different composition are formed. The lower layer is a complete monolayer of Li(,2)O/Li(,2)S in a two-to-one ratio. The upper layer is thicker and consists of LiS(,2)O(,4) and LiS(,2)O(,3) in a 50% mixture. The formation of the upper layer is observed only after exposures of the surface to partial pressures of SO(,2) greater than one millitorr. A model to explain the formation of the two layers and the observed pressure dependence is given.;The resulting molecular model is used in combination with preliminary electrochemical results to compare the gas phase layer with the film formed on Li anodes in the Li/SO(,2) ambient temperature battery. The model proves to be useful in explaining storage and discharge characteristics of the battery that are due to the presence of the anodic film.;A flow method is used to study the kinetics of the Li-SO(,2) reaction at submonolayer coverages. The pressure in a reaction vessel is monitored as a function of time when a fresh Li surface is exposed. A reaction order between 0.5 and 0.9 results, indicating that the surface of the scraped Li is energetically heterogeneous with respect to sites available for adsorption. An Arrhenius plot of the data indicates that the activation energy for the dissociative chemisorption to form the first monolayer lies between 2 and 5 kcal/mole. The sources for site heterogeneity and the activation energy are discussed.
机译:在特殊构造的真空系统中,通过控制与表面反应的气体量,可以依次研究在原子清洁的锂金属上暴露于SO(,2)气体后形成的层的生长。提出了一种快速傅立叶变换算法,用于从俄歇谱图的背景中消除仪器加宽,量化和非弹性电子损失过程。 S(LMM)和O(KKL)价态跃迁的反卷积峰用于确定该层形成每个阶段的分子组成。相关的峰面积给出了与表面反应的SO(,2)的量以及每一层中存在的硫和氧的相对量。结果表明形成了具有不同组成的两个不同的层。下层是Li(,2)O / Li(,2)S的二比一完整的单层。上层较厚,由LiS(,2)O(,4)和LiS(,2)O(,3)的50%混合物组成。仅在表面暴露于大于一毫托的SO(,2)分压后才观察到上层的形成。给出了解释这两个层的形成和观察到的压力依赖性的模型。;所得的分子模型与初步的电化学结果结合使用,比较了气相层和Li / SO中在Li阳极上形成的膜( ,2)环境温度电池。该模型被证明对于解释由于存在阳极膜而引起的电池的存储和放电特性非常有用。流动方法用于研究亚单层覆盖下Li-SO(,2)反应的动力学。当新鲜的Li表面暴露时,作为时间的函数监测反应容器中的压力。反应顺序在0.5到0.9之间,表明刮擦Li的表面相对于可用于吸附的部位在能量上是异质的。数据的Arrhenius曲线表明,用于离解化学吸附形成第一单层的活化能在2至5 kcal / mol之间。讨论了位点异质性和活化能的来源。

著录项

  • 作者

    NEBESNY, KENNETH WALTER.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Analytical chemistry.
  • 学位 Ph.D.
  • 年度 1984
  • 页码 410 p.
  • 总页数 410
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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