Reprint

Catalysis by Precious Metals, Past and Future

Edited by
April 2020
204 pages
  • ISBN978-3-03928-722-2 (Paperback)
  • ISBN978-3-03928-723-9 (PDF)

This book is a reprint of the Special Issue Catalysis by Precious Metals, Past and Future that was published in

Chemistry & Materials Science
Engineering
Summary
The future of the precious metals is shiny and resistant. Although expensive and potentially replaceable by transition metal catalysts, precious metal implementation in research and industry shows potential. These metals catalyze oxidation and hydrogenation due to their dissociative behavior toward hydrogen and oxygen, dehydrogenation, isomerization, and aromatization, etc. The precious metal catalysts, especially platinum-based catalysts, are involved in a variety of industrial processes. Examples include Pt–Rh gauze for nitric acid production, the Pt/Al2O3 catalyst for cyclohexane and propylene production, and Pd/Al2O3 catalysts for petrochemical hydropurification reactions, etc. A quick search of the number of published articles in the last five years containing a combination of corresponding “metals” (Pt, Pd, Ru, Rh and Au) and “catalysts” as keywords indicates the importance of the Pt catalysts, but also the continuous increase in the contribution of Pd and Au. This Special Issue reveals the importance of precious metals in catalysis and focuses on mono- and bi-metallic formulations of any supported precious metals and their promotional catalytic effect of other transition metals. The application of precious metals in diverse reactions, either homogeneous or heterogeneous, and studies of the preparation, characterization, and applications of the supported precious metal catalysts, are presented.
Format
  • Paperback
License
© 2020 by the authors; CC BY-NC-ND license
Keywords
microwave; catalyst synthesis; Pt/Al2O3; aging; platinum dispersion; drying; DOC; hydrogenolysis; glycerol; 1-propanol; 2-propanol; palladium catalyst; palladium catalysts; CNTs; dodecahydro-N-ethylcarbazole; dehydrogenation; hydrogen storage; precious metals; reduction temperature; hydrodechlorination; XPS; dispersion; turnover frequency; gold nanoparticles; clay; PVA; stabilizing agent; glucose oxidation; phenol photo-degradation; CO oxidation; Au–TiO2; gold catalysts; titania; sustainable ammonia synthesis; ruthenium; caesium; porous carbons; renewable hydrogen; direct reduction; propane dehydrogenation; Pt–Sn/Al2O3; Pt3Sn alloy; PtSn alloy; P25@Pd; core-shell; heterogeneous enantioselective hydrogenation; acetophenone; palladium; chelate; amino acid; proline; N-methylproline; azetidine; pipecolinic acid; 4-fluoroproline; 4-hydroxyproline; 2-α-benzylproline; hydrogen bonding; oxidative coupling; X-ray crystallography; perovskite; photochemical; photodegradation; precious metals; gas phase hydrogenation; alkynols; 3-butyn-1-ol; 3-butyn-2-ol; 2-methyl-3-butyn-2-ol; alkenols; triple bond electron charge; Pd/Al2O3; n/a