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What methods can be used to determine the purity of trichlorosilane? Gas phase? Is it still in the liquid phase?
Gas phase, online detection, hehe!
Liquid phase sampling, chromatographic analysis, mass spectrometric analysis.
It seems like you don’t understand anything? There are so many problems. Dizzy. Trichlorosilane is of course in the gas phase. .
Trichlorosilane SiHCl3 1. Aliases • English names: silicon chloroform, silane, trichlorosilane; Trichlorosilane, Silicochloroform. 2. Uses: Raw material for single-crystal silicon, epitaxial growth, silicon melt, silicone oil, chemical vapor deposition, production of silicon compounds, electronic gases. 3. Preparation method: (1) Si reacts with HCl at high temperature. (2) Reduction of silicon tetrachloride with hydrogen (using an aluminum-containing catalyst). 4. Physical and chemical properties Molecular weight: 135.43 Melting point (101.325 kPa): -134℃ ; Boiling point (101.325 kPa): 31.8℃ ; Liquid density (0°C): 1350 kg/m3 ; Relative density (gas, air=1): 4.7 ; Vapor pressure (-16.4°C): 13.3kPa ; (14.5℃): 53.3kPa ; Ignition point: -27.8℃ ; Autoignition point: 104.4℃ ; Flash point: -14℃ ; Lower explosion limit: 9.8% ; Toxicity level: 3 ; Flammability rating: 4 ; Explosivity level: 2. Trichlorosilane is a colorless and transparent liquid that is highly volatile, flammable, and has an irritating, foul odor under normal temperature and pressure conditions. It burns very easily in air, and there is a risk of ignition at temperatures below -18°C. When exposed to an open flame, it burns violently, producing red flames and white smoke, with SiO2, HCl, and Cl2 being formed: SiHCl3 + O2 → SiO2 + HCl + Cl2 ; Vapors of trichlorosilane can form explosive mixtures with air over a wide range of concentrations, causing violent explosions when heated. Its thermal stability is better than that of dichlorosilane; at 900°C, it decomposes to produce toxic chloride fumes (HCl), as well as Cl2 and Si. It emits smoke in the presence of moisture and reacts violently with water: 2SiHCl3+3H2O—→ (HSiO)2O+6HCl ; Hydrogen is released upon decomposition in an alkaline solution: SiHCl3 + 3NaOH + H2O → Si(OH)4 + 3NaCl + H2 ; It undergoes an explosive reaction when in contact with oxidizing substances. It reacts with hydrocarbons such as acetylene and hydrocarbons to produce organochlorosilanes: SiHCl3 + CH≡CH → CH2CHSiCl3, SiHCl3 + CH2=CH2 → CH3CH2SiCl3. In the presence of lithium aluminum hydride or lithium borohydride, SiHCl3 can be reduced to silanes. The liquid SiHCl3 in the container can catch fire when the container is subjected to a severe impact. It is soluble in benzene, ether, etc. In an anhydrous state, trichlorosilane does not corrode iron and stainless steel, but it corrodes most metals in the presence of moisture. 5. Toxicity: Mouse inhalation LC50: 1.5–2 mg/L; maximum allowable concentration: 1 mg/m3. Both the vapor and liquid forms of trichlorosilane can cause burns to the eyes and skin, and inhalation can irritate the respiratory mucosa, leading to various symptoms (see silicon tetrachloride). 6. Safety precautions: Liquids should be stored in glass bottles or metal tanks. These containers must be kept in a cool, dry, and well-ventilated area outdoors, or in a dedicated storage facility for flammable liquids. They should be separated from oxidizers, alkalis, and acids, kept away from sources of fire and heat, and protected from light. The storage temperature should not exceed 25°C. Ammonia solution can be used to detect leaks. In case of a fire, carbon dioxide, dry chalk powder, and dry sand can be used; water and foam are prohibited. Waste gas can be absorbed using water or alkaline solutions. Trichlorosilane is highly corrosive when it contains moisture. Iron, nickel, copper-nickel alloys, nickel steel, and low-alloy steel can be used; aluminum and aluminum alloys cannot be used. Polytetrafluoroethylene, polytrifluorochloroethylene polymers, fluororubber, polyvinyl chloride, polyethylene, glass, etc., can be used.
For gas-phase detection, there should be other detection methods as well
The gas phase can only detect the levels of four types of silanes; other impurities, such as BP, cannot be detected
Oh right, our trichlorosilane is produced via gas phase methods; it’s not possible to determine its BP content, which is quite problematic