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Book Synopsis
This compilation opens with a study on the catalytic conversion of methanol to olefins, mainly SAPO-34 and ZSM-5, as well as the synthesis, properties, applications. A description of phenylalanine ammonia-lyase is presented in relation to structure, localization, expression, regulation, assay methods and the factors influencing phenylalanine ammonia-lyase activity, as well as its importance to the phenylpropanoid pathway for plant growth and development. The authors critically analyze the development of molecular nanocatalysts based on organochalcogenligands and their applications in the transfer of hydrogenation. Following this, the progress in applications of dimensional analysis and similarity theory in electrochemical kinetics and electrochemical engineering is discussed. The use of dimensionless groups in problems of current density distribution and electrochemical mass transfer is described and the similarity criteria involved are considered. The authors focus on various solvent-minimized sample pre-treatment procedures which are inexpensive and offer minimal exposure to toxic organic solvents during sample analysis. The concluding chapter explores bis-azides, i.e., organic compounds presenting two azido groups in their structures. Their utility in synthetic group transformation is covered, as well as in polymer chemistry, the preparation of bioactive compounds, click chemistry, and in the synthesis of cross-linked DNA.

Table of Contents
Preface; A Review on the Production of Light Olefins from Hydrocarbons Cracking and Methanol Conversion; Phenylalanine Ammonia-Lyase in Higher Plants: A Key Enzyme for Plant Development; Chalcogenated Ligands/Nanoparticles and Transfer Hydrogenation; Dimensional Analysis and Similarity Theory in Electrochemistry; Micro Extraction: An Ecocompatible Extraction Technique; Bis-Azides; Index.

Advances in Chemistry Research: Volume 59

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A Hardback by James C. Taylor

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    View other formats and editions of Advances in Chemistry Research: Volume 59 by James C. Taylor

    Publisher: Nova Science Publishers Inc
    Publication Date: 18/03/2020
    ISBN13: 9781536171129, 978-1536171129
    ISBN10: 1536171123

    Description

    Book Synopsis
    This compilation opens with a study on the catalytic conversion of methanol to olefins, mainly SAPO-34 and ZSM-5, as well as the synthesis, properties, applications. A description of phenylalanine ammonia-lyase is presented in relation to structure, localization, expression, regulation, assay methods and the factors influencing phenylalanine ammonia-lyase activity, as well as its importance to the phenylpropanoid pathway for plant growth and development. The authors critically analyze the development of molecular nanocatalysts based on organochalcogenligands and their applications in the transfer of hydrogenation. Following this, the progress in applications of dimensional analysis and similarity theory in electrochemical kinetics and electrochemical engineering is discussed. The use of dimensionless groups in problems of current density distribution and electrochemical mass transfer is described and the similarity criteria involved are considered. The authors focus on various solvent-minimized sample pre-treatment procedures which are inexpensive and offer minimal exposure to toxic organic solvents during sample analysis. The concluding chapter explores bis-azides, i.e., organic compounds presenting two azido groups in their structures. Their utility in synthetic group transformation is covered, as well as in polymer chemistry, the preparation of bioactive compounds, click chemistry, and in the synthesis of cross-linked DNA.

    Table of Contents
    Preface; A Review on the Production of Light Olefins from Hydrocarbons Cracking and Methanol Conversion; Phenylalanine Ammonia-Lyase in Higher Plants: A Key Enzyme for Plant Development; Chalcogenated Ligands/Nanoparticles and Transfer Hydrogenation; Dimensional Analysis and Similarity Theory in Electrochemistry; Micro Extraction: An Ecocompatible Extraction Technique; Bis-Azides; Index.

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