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Selective Catalytic Oxidation of Cyclohexanol and Benzyl Alcohol by Tungsten Trioxide

Author: LiTaiChen
Tutor: JiangHeng
School: Liaoning University of Petroleum \u0026 Chemical Technology
Course: Analytical Chemistry
Keywords: Cyclohexanone Benzaldehyde Tungsten trioxide Hydrogen peroxide (mass fraction 30%) Catalytic oxidation
CLC: TQ203.2
Type: Master's thesis
Year: 2010
Downloads: 95
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Abstract


Cyclohexanone and benzaldehyde are important organic industrial raw materials. Cyclohexanone is the chemical intermediates for producing caprolactam and nylon-66; benzaldehyde is one of the most simple and most useful aromatic aldehydes. Benzaldehyde was widely used in the chemical industry, medicine, perfumes, pesticides, dyes and other industries. But the synthetic methods reported in literatures had many shortcomings, such as complex operation, high costs; many toxic and hazardous substances used in the production process, toxic substances-chlorine existed in benzaldehyde products, so these methods are inconsistent with green chemistry development requirements. Therefore, it is still one significative and chanllenging difficulties to explore effective and green synthetic methods of cyclohexanone and benzaldehyde. In this paper, synthetic methods of cyclohexanone and benzaldehyde were studied; meanwhile, the high-efficiency and green synthesis path was discussed.In this paper, the reactions of selective catalytic oxidation of cyclohexanol and benzyl alcohol to cyclohexanone and benzaldehyde were studied, H2O2 (mass fraction 30%) as oxidant, WO3 and WO3/TiO2 as catalysts. The influencing factors in the reactions were investigated; the feasible synthesis conditions were obtained. The results under the feasible conditions of the experiments were as follows:(1) With WO3 as catalyst and H2O2 (mass fraction 30%) as oxidant, the reaction of selective catalytic oxidation of cyclohexanol to cyclohexanone was studied. When the amount of WO3 1mmol, the amount of methanol 12.4mmol (5mL), the molar ration of WO3 and cyclohexanol and H2O2 1:100:147, refluxing temperature 80oC and reaction time 2.5h, the yield of cyclohexanone was up to 88.6%. By filtrating and separating, WO3 catalyst could be reused for six times and catalytic effect changed little. Under the feasible conditions, the small scale tests and repeated testing were investigated, and the yield of cyclohexanone changed little.(2) In the experiments of catalytic oxidation of cyclohexanol to cyclohexanone, with WO3/TiO2 as catalyst. When the amount of WO3/TiO2 catalyst 0.9276g (equal to 0.8mmol WO3), the amount of methanol 12.4mmol (5mL), the molar ration of WO3 and cyclohexanol and H2O2 2:250:375, refluxing temperature 80oC and reaction time 2h, the yield of cyclohexanone was up to 94.5%. WO3/TiO2 catalyst was better than WO3 catalyst, and improved the yield of cyclohexanone and shortened the reaction time. By filtrating and separating, WO3/TiO2 catalyst could be reused for six times and catalytic effect changed little. Under the feasible conditions, the small scale tests and repeated testing were investigated, and the yield of cyclohexanone changed little.(3) With WO3 as catalyst, H2O2 (mass fraction 30%) as oxidant, the reaction of selective catalytic oxidation of benzyl alcohol to benzaldehyde was also studied. When the amount of WO3 1mmol, the amount of methanol 24.8mmol (10mL), the molar ration of WO3 and benzyl alcohol and H2O2 1:100:147, refluxing temperature 60oC and reaction time 2h, the yield of benzaldehyde was up to 95.8%. By filtrating and separating, WO3 catalyst could be reused for six times and catalytic effect changed little. Under the feasible conditions, the small scale tests and repeated testing were investigated, and the yield of benzaldehyde changed little.Compared with existed methods, the experimental methods were simple; reaction conditions were mild, clean, economical, and consistent with the requirements of green chemistry. A new approach for the clean synthesis of cyclohexanone and chlorine-free benzaldehyde were provided.

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CLC: > Industrial Technology > Chemical Industry > Basic Organic Chemistry Industry > General issues > Chemical reaction process > Catalytic process
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