Novel Synthetic Chemistry of Ureas and Amides

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This book explores the chemistry and application of molecules containing urea and amide bonds, fundamental to biological processes. Reviews the author's finding that sterically hindered ureas undergo solvolysis at room temperature under neutral conditions.

In this thesis, the author investigates the chemistry and application of molecules containing urea and amide bonds. These bonds are some of the strongest known and are fundamental to biological processes. The author describes his discovery that sterically hindered ureas undergo solvolysis at room temperature under neutral conditions. This is a remarkable finding, since ureas are inert under these conditions and a general rule of chemistry is that hindered substrates are less reactive. Remarkably, the author translates these results to the correspondingly sterically hindered amides. This thesis has resulted in a number of outstanding publications in high profile journals. The unique method for breaking urea and amide bonds developed in this study is likely to have far reaching consequences for biological protein manipulation.

Nominated by the University of Bristol as an outstanding PhD thesis New method for breaking urea and amide bonds outlined Far reaching consequences for the study of biological protein manipulation Includes supplementary material: sn.pub/extras

Inhalt
Transition metal catalysis.- Palladium catalysis.- Pd(II) catalysed aminocarbonylation of alkenes.- Carbonylation of aryl ureas.- Urea Hydrolysis.- Amide hydrolysis.

Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09783642320507
    • Sprache Englisch
    • Auflage 2013
    • Genre Chemie
    • Lesemotiv Verstehen
    • Größe H241mm x B160mm x T15mm
    • Jahr 2012
    • EAN 9783642320507
    • Format Fester Einband
    • ISBN 3642320503
    • Veröffentlichung 30.08.2012
    • Titel Novel Synthetic Chemistry of Ureas and Amides
    • Autor Marc Hutchby
    • Untertitel Springer Theses
    • Gewicht 448g
    • Herausgeber Springer Berlin Heidelberg
    • Anzahl Seiten 184

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