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07. Aldehydes and ketones
07. Aldehydes and ketones

... As noted earlier, an aldehyde is partially converted to its enolate anion by bases such as hydroxide ion and alkoxide ions. This type of condensations is character for aldehydes which have hydrogen atoms at the α-carbon atom. ...
File - Dr KHALID SHADID
File - Dr KHALID SHADID

Carbonyls
Carbonyls

Chap Thirteen: Alcohols
Chap Thirteen: Alcohols

... inversion of configuration incomplete iii. SN2 reaction With phosphorus trihalides PBr3 or PCl3 or PCl5 or P° and I2 to form alkyl halides o Mechanism/ no rearrangement/ inversion of configuration e. Alkyl tosylates (sulfonate esters) by reaction of ROH with sulfonyl chlorides i. Mechanism/ retentio ...
Outline_CH13_Klein
Outline_CH13_Klein

... inversion of configuration incomplete iii. SN2 reaction With phosphorus trihalides PBr3 or PCl3 or PCl5 or P° and I2 to form alkyl halides o Mechanism/ no rearrangement/ inversion of configuration e. Alkyl tosylates (sulfonate esters) by reaction of ROH with sulfonyl chlorides i. Mechanism/ retentio ...
ch16 by dr. Dina
ch16 by dr. Dina

Organic Chemistry I (CHEM 2010 and 2012)
Organic Chemistry I (CHEM 2010 and 2012)

Aldehydes, Ketones and Carboxylic acids
Aldehydes, Ketones and Carboxylic acids

... group around the carbonyl carbon and it is easier for the nucleophile to attack the carbonyl carbon as compared to ketones. Electronically, aldehyde is also more reactive than ketone because the presence of two alkyl groups in ketones will reduce the electrophilicity (partial positive charge ) of th ...
Chapter 16 Aldehydes and Ketones I. Nucleophilic Addition to
Chapter 16 Aldehydes and Ketones I. Nucleophilic Addition to

Aldehydes and Ketones
Aldehydes and Ketones

... Steric factors contribute to the reactivity of an aldehyde. The carbonyl carbon of an aldehyde is more accessible to the nucleophile. Ketones have greater steric crowding in their transition states, so they have less stable transition states. ...
Aldehydes and Ketones
Aldehydes and Ketones

... Steric factors contribute to the reactivity of an aldehyde. The carbonyl carbon of an aldehyde is more accessible to the nucleophile. Ketones have greater steric crowding in their transition states, so they have less stable transition states. ...
Organic Chemistry II
Organic Chemistry II

Aldehydes - Sanfordchemistrystudentwork
Aldehydes - Sanfordchemistrystudentwork

CARBONYL COMPOUNDS - Aldehydes and Ketones C=O C C C
CARBONYL COMPOUNDS - Aldehydes and Ketones C=O C C C

... Ketones do not react with Tollen’s Reagent or Fehling’s Solution. ...
15 - MSU Chemistry
15 - MSU Chemistry

Title Carbonyl reduction with CaH2 and R3SiCl catalyzed by ZnCl2
Title Carbonyl reduction with CaH2 and R3SiCl catalyzed by ZnCl2

Chapter_Sixteen_lecture
Chapter_Sixteen_lecture

Aldehydes and Ketones
Aldehydes and Ketones

QUESTIONS FOR PRACTICE HYDROCARBONS 1. Name the least
QUESTIONS FOR PRACTICE HYDROCARBONS 1. Name the least

Chem 30CL - Lecture 1c - UCLA Chemistry and Biochemistry
Chem 30CL - Lecture 1c - UCLA Chemistry and Biochemistry

... • The yields are moderate (77 % for the reaction above) due to the increased water solubility of the products ...
Name: Chem 22 Final exam Spring `00 What product is formed when
Name: Chem 22 Final exam Spring `00 What product is formed when

nucleophilic addition
nucleophilic addition

Aldehydes and Ketones-12c - TAMU
Aldehydes and Ketones-12c - TAMU

Exam 1 from 2008
Exam 1 from 2008

Notes on Substitutions and Eliminations
Notes on Substitutions and Eliminations

< 1 ... 12 13 14 15 16 17 18 19 20 ... 23 >

Aldol reaction



The aldol reaction is a means of forming carbon–carbon bonds in organic chemistry.Discovered independently by Charles-Adolphe Wurtz and Alexander Borodin in 1872, the reaction combines two carbonyl compounds (the original experiments used aldehydes) to form a new β-hydroxy carbonyl compound. These products are known as aldols, from the aldehyde + alcohol, a structural motif seen in many of the products. Aldol structural units are found in many important molecules, whether naturally occurring or synthetic.For example, the aldol reaction has been used in the large-scale production of the commodity chemical pentaerythritoland the synthesis of the heart disease drug Lipitor (atorvastatin, calcium salt).The aldol reaction unites two relatively simple molecules into a more complex one. Increased complexity arises because up to two new stereogenic centers (on the α- and β-carbon of the aldol adduct, marked with asterisks in the scheme below) are formed. Modern methodology is capable of not only allowing aldol reactions to proceed in high yield but also controlling both the relative and absolute stereochemical configuration of these stereocenters. This ability to selectively synthesize a particular stereoisomer is significant because different stereoisomers can have very different chemical and biological properties.For example, stereogenic aldol units are especially common in polyketides, a class of molecules found in biological organisms. In nature, polyketides are synthesized by enzymes that effect iterative Claisen condensations. The 1,3-dicarbonyl products of these reactions can then be variously derivatized to produce a wide variety of interesting structures. Often, such derivitization involves the reduction of one of the carbonyl groups, producing the aldol subunit. Some of these structures have potent biological properties: the immunosuppressant FK506, the anti-tumor agent discodermolide, or the antifungal agent amphotericin B, for example. Although the synthesis of many such compounds was once considered nearly impossible, aldol methodology has allowed their efficient synthesis in many cases.A typical modern aldol addition reaction, shown above, might involve the nucleophilic addition of a ketone enolate to an aldehyde. Once formed, the aldol product can sometimes lose a molecule of water to form an α,β-unsaturated carbonyl compound. This is called aldol condensation. A variety of nucleophiles may be employed in the aldol reaction, including the enols, enolates, and enol ethers of ketones, aldehydes, and many other carbonyl compounds. The electrophilic partner is usually an aldehyde or ketone (many variations, such as the Mannich reaction, exist). When the nucleophile and electrophile are different, the reaction is called a crossed aldol reaction; on the converse, when the nucleophile and electrophile are the same, the reaction is called an aldol dimerization.
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