Kinetics of thermal decomposition of triethylgallium, trimethylgallium, and trimethylindium adsorbed on GaAs(100)

三乙基镓 三甲基铟 三甲基镓 分析化学(期刊) 化学 热分解 X射线光电子能谱 解吸 阿累尼乌斯方程 热脱附 活化能 升华(心理学) 热脱附光谱法 物理化学 吸附 材料科学 外延 金属有机气相外延 有机化学 化学工程 心理学 图层(电子) 工程类 心理治疗师
作者
J. A. McCaulley,R. J. Shul,V. M. Donnelly
出处
期刊:Journal of vacuum science & technology [American Institute of Physics]
卷期号:9 (6): 2872-2886 被引量:69
标识
DOI:10.1116/1.577146
摘要

We report studies of the kinetics of thermal decomposition of triethylgallium (TEGa), trimethylgallium (TMGa), and trimethylindium (TMIn) adsorbed on GaAs(100) in ultrahigh vacuum. The adsorbed layers were prepared by dosing GaAs(100) at room temperature, to either saturated coverage or coverages below saturation. The relative coverage of carbon was monitored by x-ray photoelectron spectroscopy (XPS) as the substrate temperature was slowly increased (0.6–3.2 °C/min). Products were detected at faster heating rates (0.7–6 °C/s) with a differentially pumped quadrupole mass spectrometer. The substrate temperature was measured by infrared laser interferometric thermometry. The kinetic analysis also makes use of XPS and mass spectrometric data on laser-induced, rapid thermal decomposition (heating rates of ∼1011 °C/s ). TEGa dissociatively chemisorbs on GaAs(100) at room temperature. Heating the substrate from room temperature to ∼500 °C results in desorption of a Ga–alkyl at low temperature, ascribed mostly to diethylgallium (DEGa) and possibly some TEGa. At higher temperature, C2H4 and C2H5 desorb in parallel after most of the Ga–alkyl has desorbed. The hydrocarbon desorption is described well by simple first order kinetics with an activation energy, Eact=32±4 kcal/mol, and a pre-exponential A factor of 2.5×1010±1.5 s−1. Ga–alkyl desorption is more complicated; the Arrhenius parameters for assumed first order desorption exhibit strong coverage dependences. A fit to all the data was obtained for A=5×108 s−1 and Eact=18 kcal/mol at saturated coverage, with a large decrease in Eact (or increase in A) with decreasing coverage. TMGa decomposes to yield a Ga–alkyl desorption product (either dimethylgallium, TMGa, or a mixture of the two) at low temperature, and CH3 at higher temperature. CH3 desorption has a first order activation energy of 43±2 kcal/mol for an assumed A factor of 1×1013 s−1. For the Ga–alkyl, A=108 s−1 and Eact=19 kcal/mol, with a coverage dependence similar to DEGa desorption from TEGa decomposition. TMIn undergoes a methyl exchange reaction on GaAs(100). Upon heating above room temperature, a Ga–alkyl desorbs first, followed by desorption of CH3 at higher temperature. The Ga–alkyl has with the same cracking pattern as observed for TMGa decomposition. No In–alkyls desorb, and In desorption does not occur until all carbon-containing species desorb. CH3 starts to desorb at lower temperature than for TMGa decomposition. Assuming an A factor of 1×1013 s−1, CH3 desorption over the observed wide temperature range indicates a range of activation energies from 33–43 kcal/mol. Ga–alkyl desorption is similar to that observed during TMGa decomposition. At saturated coverage, A=108 and Eact=17 kcal/mol. However, the coverage dependence is not as strong as for TMGa, so that Ga–alkyl desorption peaks at lower temperature for TMIn. Decomposition mechanisms for these group-III metal alkyls are discussed, along with implications for growth of III–V compound semiconductor films from these precursors by chemical vapor deposition and molecular beam techniques.
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