Vapor Pressure of Dichlorosilane, Trichlorosilane, and Tetrachlorosilane from 300 K to 420 K
Kenneth N. Marsh, Tony Knimbula Morris, G. P. Peterson, Thomas J. Hughes, Quentin Ran, James Clifton Holste
Abstract
Kenneth N. Marsh, Tony Knimbula Morris, G. P. Peterson, Thomas J. Hughes, Quentin Ran, James Clifton Holste
Abstract
The method for the preparation of elemental silicon of sufficient purity for the fabrication of electronic devices is by first converting silicon oxide to silicon–hydrogen-chloride compounds, purifying the material as a fluid mixture, and then converting the product to solid silicon. During the purification process a mixture of dichlorosilane (SiH 2 Cl 2 ), trichlorosilane (SiHCl 3 ), and tetrachlorosilane or silicon tetrachloride (SiCl 4 ) are formed with each of the components in significant quantities. Models that describe the vapor–liquid equilibrium behavior for the mixtures are required to design appropriate separation and purification processes. Pure fluid properties form the starting point for most mixture models, hence the importance of vapor pressures for the pure materials. In this work we report measurements of the vapor pressures for three of the most important fluids in the silicon production process, dichlorosilane, trichlorosilane, and tetrachlorosilane. Our results are compared with measurements reported previously. The instability of chlorosilanes complicates the experimental procedures because of the corrosive nature of the products formed, and in particular the potential for self-ignition upon exposure to moist air. The experimental procedures used to minimize the hazards and to avoid contamination of the fluids are described.
OpenAlex reports 3 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
The method for the preparation of elemental silicon of sufficient purity for the fabrication of electronic devices is by first converting silicon oxide to silicon–hydrogen-chloride compounds, purifying the material as a fluid mixture, and then converting the product to solid silicon. During the purification process a mixture of dichlorosilane (SiH 2 Cl 2 ), trichlorosilane (SiHCl 3 ), and tetrachlorosilane or silicon tetrachloride (SiCl 4 ) are formed with each of the components in significant quantities. Models that describe the vapor–liquid equilibrium behavior for the mixtures are required to design appropriate separation and purification processes. Pure fluid properties form the starting point for most mixture models, hence the importance of vapor pressures for the pure materials. In this work we report measurements of the vapor pressures for three of the most important fluids in the silicon production process, dichlorosilane, trichlorosilane, and tetrachlorosilane. Our results are compared with measurements reported previously. The instability of chlorosilanes complicates the experimental procedures because of the corrosive nature of the products formed, and in particular the potential for self-ignition upon exposure to moist air. The experimental procedures used to minimize the hazards and to avoid contamination of the fluids are described.
Key concepts: Trichlorosilane, Dichlorosilane, Silicon, Silicon tetrachloride, Hydrogen chloride, Chemistry, Chemical engineering, Vapor pressure