有望实现氯硅烷歧化的催化剂

Sci Pub Date : 2024-07-01 DOI:10.3390/sci6030038
Olesya Zhuchok, Yegor Stolmakov, Alexandra Kalinina, Vitaly Medov, Darya Belousova, Nikita Maleev, Georgy Mochalov
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引用次数: 0

摘要

目前,电子和光伏领域最常用的硅烷合成方法是三氯硅烷析出法。因此,对氯硅烷钝化反应动力学的实验研究具有科学和实用意义。有人提出了一种催化剂,可以在很宽的温度和压力范围内进行析出反应。实验获得了三氯硅烷、二氯硅烷和一氯硅烷析出反应速率与压力关系的动力学和热力学数据。此外,还通过实验测定了一氯硅烷和二氯硅烷的饱和蒸汽压与温度的关系。以三氯氢硅为例,实验证明,由于化学反应的加速和蒸汽混合物中氯硅烷摩尔浓度的增加,将压力提高到 6 个大气压可将反应器的比生产率提高至少一个数量级。因此,反应器对物质的负荷成倍增加,从而使氯硅烷分解装置的性能普遍提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Promising Catalyst for Chlorosilane Dismutation
Currently, the most common method of silane synthesis for electronics and photovoltaics is trichlorosilane dismutation. Therefore, an experimental study of the kinetics of the dismutation reaction of chlorosilanes is of scientific and practical interest. A catalyst has been proposed that allows the dismutation reaction to be carried out in a wide range of temperatures and pressures. Both kinetic and thermodynamic data on the dependence of the rate of the dismutation reactions of trichlorosilane, dichlorosilane, and monochlorosilane on pressure were experimentally obtained. In addition, the dependence of saturated vapor pressure on temperature for monochlorosilane and dichlorosilane were also experimentally determined. Using the example of TCS, it was experimentally established that increasing the pressure to six atmospheres makes it possible to increase the specific productivity of the reactor by at least an order of magnitude due to the acceleration of the chemical reaction and the increase in the molar concentration of chlorosilanes in the vapor mixture. Consequently, it becomes possible to multiply the reactor’s load on the substance and, accordingly, the performance of the chlorosilane dismutation apparatus in general.
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Sci
Sci
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4.50
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