Beschreibung
Convert low-carbon molecules into high-value products using zeolite catalysis Converting abundant low-carbon molecules like CO, CO2, methane, and methanol into valuable chemicals requires robust catalysts with precise control over activity and selectivity. Zeolite Catalysis for Low-Carbon Molecule Conversion: Synthesis, Characterization, and Applications provides researchers and engineers with detailed guidance on designing metal-zeolite bifunctional catalysts that outperform single-function alternatives in activity, selectivity, and stability. This reference covers synthesis and characterization of zeolite-encapsulated catalysts and hierarchical zeolites, then examines catalytic conversion of CO, CO2, methane, and methanol over various zeolite types. Additional chapters address hydrogenation, dehydrogenation, and oxidation reactions. Novel preparation methods enable tailoring zeolite pores and properties for specific applications, connecting fundamental principles with industrial implementation. The book also covers: * Detailed methods for synthesizing zeolite-encapsulated catalysts and hierarchical zeolites with tunable acidities and uniform micropore structures * Characterization techniques for analyzing zeolite properties including pore structure, thermal stability, and catalytic performance under operating conditions * Catalytic conversion pathways for C1 chemicals and light alkenes derived from fossil fuels and biomass feedstocks * Metalzeolite bifunctional catalyst design using impregnation, ion exchange, and insitu synthesis to optimize activity and selectivity I* ndustrial applications in heterogeneous catalytic processes including hydrogenation, dehydrogenation, and selective oxidation reactions Catalytic chemists, materials scientists, chemical engineers, and industrial researchers seeking to advance zeolite-based catalysis will benefit from this reference. By connecting catalyst design principles with practical conversion processes, Zeolite Catalysis for Low-Carbon Molecule Conversion supports both fundamental research and commercial development of sustainable chemical production technologies.
Autorenporträt
Xingang Li is Chair Professor at School of Chemical Engineering & Technology, Tianjin University, China. Prof. Li has been active in the field of heterogeneous catalysis working with transformation of low carbon molecules into liquid fuels & chemicals, hydrogen economy, and elimination of exhaust pollutions. Noritatsu Tsubaki is Chair Professor at Department of Applied Chemistry, School of Engineering, University of Toyama, Japan. Prof. Tsubaki's research includes: 1) Synthetic diesel, gasoline, alcohol and ether from syngas, coal and biomass. 2) Heterogeneous and homogeneous catalysis in supercritical fluids. 3) Study on zeolite membrane, metal membrane and electrolyte membrane. 4) The development of carbon materials, mesoporous materials and MOF.
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