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Applications of Boronic Acids, Boron...
~
Manhas, Sanjay.
Applications of Boronic Acids, Boronates, and Borates as Catalysts or Promoters for Chemical Transformations.
紀錄類型:
書目-語言資料,手稿 : Monograph/item
正題名/作者:
Applications of Boronic Acids, Boronates, and Borates as Catalysts or Promoters for Chemical Transformations./
作者:
Manhas, Sanjay.
面頁冊數:
1 online resource (459 pages)
附註:
Source: Dissertation Abstracts International, Volume: 79-12(E), Section: B.
Contained By:
Dissertation Abstracts International79-12B(E).
標題:
Organic chemistry. -
電子資源:
click for full text (PQDT)
ISBN:
9780438186620
Applications of Boronic Acids, Boronates, and Borates as Catalysts or Promoters for Chemical Transformations.
Manhas, Sanjay.
Applications of Boronic Acids, Boronates, and Borates as Catalysts or Promoters for Chemical Transformations.
- 1 online resource (459 pages)
Source: Dissertation Abstracts International, Volume: 79-12(E), Section: B.
Thesis (Ph.D.)--University of Toronto (Canada), 2018.
Includes bibliographical references
The central theme of the research outlined in this thesis is to develop synthetic applications of organoboron compounds as catalysts or promoters. Chapter 1 emphasizes the physical properties of boronic acids and borates. Relevant applications that exploit boronic acid Lewis acidity and the ability to form reversible covalent interactions with alcohols and carboxylic acids are reviewed. In chapter 2, boron-based Lewis acid- and Bronsted acid-catalyzed Fischer glycosidations were explored. In this study, protected C-(1)-hemiacetal sugars were activated towards O- and S -glycosidations with boronic esters and borates. Chapter 3 describes our efforts towards an efficient protecting group free Fischer glycosidation under mild conditions. In this study, boronic acids were used as transient protecting groups and phase-transfer reagents for sugars in low-polarity solvents. We also found that the binding of boronic acids to free sugars changed the thermodynamic profile of the Fischer glycosidation. In chapter 4 we report a method for protodeboronation of electron-neutral and electron-rich arylboronic acids with electron-deficient beta-hydroxy acids and mildly acidic additives. Calculated transition state energies supported the experimentally observed trends for the protodeboronation of arylboronic acids. Finally, progress was made towards extending the protodeboronation protocol to deuterodeboronations of arylboronic acids.
Electronic reproduction.
Ann Arbor, Mich. :
ProQuest,
2018
Mode of access: World Wide Web
ISBN: 9780438186620Subjects--Topical Terms:
1148722
Organic chemistry.
Index Terms--Genre/Form:
554714
Electronic books.
Applications of Boronic Acids, Boronates, and Borates as Catalysts or Promoters for Chemical Transformations.
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Applications of Boronic Acids, Boronates, and Borates as Catalysts or Promoters for Chemical Transformations.
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Source: Dissertation Abstracts International, Volume: 79-12(E), Section: B.
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The central theme of the research outlined in this thesis is to develop synthetic applications of organoboron compounds as catalysts or promoters. Chapter 1 emphasizes the physical properties of boronic acids and borates. Relevant applications that exploit boronic acid Lewis acidity and the ability to form reversible covalent interactions with alcohols and carboxylic acids are reviewed. In chapter 2, boron-based Lewis acid- and Bronsted acid-catalyzed Fischer glycosidations were explored. In this study, protected C-(1)-hemiacetal sugars were activated towards O- and S -glycosidations with boronic esters and borates. Chapter 3 describes our efforts towards an efficient protecting group free Fischer glycosidation under mild conditions. In this study, boronic acids were used as transient protecting groups and phase-transfer reagents for sugars in low-polarity solvents. We also found that the binding of boronic acids to free sugars changed the thermodynamic profile of the Fischer glycosidation. In chapter 4 we report a method for protodeboronation of electron-neutral and electron-rich arylboronic acids with electron-deficient beta-hydroxy acids and mildly acidic additives. Calculated transition state energies supported the experimentally observed trends for the protodeboronation of arylboronic acids. Finally, progress was made towards extending the protodeboronation protocol to deuterodeboronations of arylboronic acids.
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click for full text (PQDT)
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