四氯化硅低温氢化的热力学特性研究

IF 2.8 3区 材料科学 Q3 CHEMISTRY, PHYSICAL
Silicon Pub Date : 2024-07-23 DOI:10.1007/s12633-024-03085-7
Zhe Ding, Li Guo, Chao Hua, Jinyi Chen, Ping Lu
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引用次数: 0

摘要

利用密度泛函理论 W1 理论计算了四氯化硅(STC)低温氢化的热力学数据。根据这些计算结果,利用化学平衡原理确定了不同温度(373.15-1173.15 K)、压力(1-40 atm)和 H2/STC 成分比(0.2-4)下的平衡浓度分布。结果表明,转化率和选择性率随着温度的升高而降低,而随着压力和 H2/STC 成分比的升高而升高。只有在极端条件下,选择性率才会发生显著变化。此外,敏感性分析结果表明,压力和成分是影响转化率的主要参数,而温度对转化率的影响仅为它们的十分之一。最终,实验结果与计算结果十分吻合,证实了热力学分析的可接受性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of the Thermodynamic Characteristics of Low-Temperature Hydrogenation of silicon Tetrachloride

The thermodynamic data for the low-temperature hydrogenation of silicon tetrachloride (STC) were calculated using density functional theory with W1 theory. Based on these calculations, the equilibrium concentration distribution was determined for different temperatures (373.15–1173.15 K), pressures (1–40 atm), and composition ratios of H2/STC (0.2–4) using the principle of chemical equilibrium. It was observed that the conversion rate and selectivity rate decreased with increasing temperature, while they increased with increasing pressure and composition ratio of H2/STC. The selectivity rate could only be significantly altered under extreme conditions. When the temperature and pressure were fixed, the yield reached its theoretical maximum when the composition ratio of H2/STC was between 0.5 and 1. Furthermore, sensitivity analysis results revealed that pressure and composition were the primary parameters influencing conversion, with temperature having only about one-tenth of their impact on the conversion rate. Ultimately, the experimental results were in good agreement with the calculated results, confirming the acceptability of the thermodynamic analysis.

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来源期刊
Silicon
Silicon CHEMISTRY, PHYSICAL-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
5.90
自引率
20.60%
发文量
685
审稿时长
>12 weeks
期刊介绍: The journal Silicon is intended to serve all those involved in studying the role of silicon as an enabling element in materials science. There are no restrictions on disciplinary boundaries provided the focus is on silicon-based materials or adds significantly to the understanding of such materials. Accordingly, such contributions are welcome in the areas of inorganic and organic chemistry, physics, biology, engineering, nanoscience, environmental science, electronics and optoelectronics, and modeling and theory. Relevant silicon-based materials include, but are not limited to, semiconductors, polymers, composites, ceramics, glasses, coatings, resins, composites, small molecules, and thin films.
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