Zaloguj się

Structure and Bonding

Ethers are organic compounds with an ether functional group which is characterized by an oxygen atom connected to two — identical or different — alkyl, aryl, or vinyl groups. The C–O–C linkage in dimethyl ether — the simplest ether — has an approximately tetrahedral bond angle of 110.3 degrees. The oxygen atom is sp3- hybridized, with the C–O distance being about 140 pm.

Classification of Ethers

Based on their attached substituent groups, ethers can be classified into two categories — symmetrical and unsymmetrical. Symmetrical ethers have two identical groups attached to either side of an oxygen atom — for example, dipropyl ether, diphenyl ether, and more. Unsymmetrical ethers have two different groups attached to either side of an oxygen atom — for example, ethyl methyl ether, butyl methyl ether, and more.

Rules Underlying the Nomenclature of Ethers

For common names, the different alkyl groups attached to the oxygen atom are arranged in alphabetical order, and the word ‘ether’ is added at the end — for example, benzyl phenyl ether. If both the alkyl groups are the same, then the prefix ‘di’ is used — for example, diethyl ether.

For IUPAC names, the larger group name becomes the root word, and the smaller group part is named alkoxy. For example, methoxypropane.

Cyclic Ethers: Heterocyclic Compounds

Cyclic ethers are heterocyclic compounds with an oxygen atom in a saturated ring. The IUPAC nomenclature for cyclic ethers uses the prefix ‘ox’ followed by the suffix ‘irane,’ ‘etane,’ ‘olane,’ ‘ane’ to indicate the number of carbon atoms in the three-membered, four-membered, five-membered, and six-membered ring systems, respectively. The number priority of the atoms of the ring begins with the oxygen atom.

Tagi

EthersStructureBondingEther Functional GroupOxygen AtomAlkyl GroupsAryl GroupsVinyl GroupsC O C LinkageDimethyl EtherTetrahedral Bond AngleSp3 HybridizedC O DistanceClassification Of EthersSymmetrical EthersUnsymmetrical EthersCommon NamesIUPAC NamesCyclic EthersHeterocyclic Compounds

Z rozdziału 11:

article

Now Playing

11.1 : Structure and Nomenclature of Ethers

Ethers, Epoxides, Sulfides

10.8K Wyświetleń

article

11.2 : Właściwości fizyczne eterów

Ethers, Epoxides, Sulfides

6.8K Wyświetleń

article

11.3 : Etery z alkoholi: odwadnianie alkoholu i synteza eteru Williamsona

Ethers, Epoxides, Sulfides

9.9K Wyświetleń

article

11.4 : Etery z alkenów: dodatek alkoholu i alkoksymerkuracja-odmerkurowanie

Ethers, Epoxides, Sulfides

7.6K Wyświetleń

article

11.5 : Etery do halogenków alkilowych: rozszczepienie kwasowe

Ethers, Epoxides, Sulfides

5.5K Wyświetleń

article

11.6 : Autooksydacja eterów do nadtlenków i wodoronadtlenków

Ethers, Epoxides, Sulfides

7.1K Wyświetleń

article

11.7 : Etery koronowe

Ethers, Epoxides, Sulfides

5.0K Wyświetleń

article

11.8 : Struktura i nazewnictwo epoksydów

Ethers, Epoxides, Sulfides

6.2K Wyświetleń

article

11.9 : Przygotowanie epoksydów

Ethers, Epoxides, Sulfides

7.2K Wyświetleń

article

11.10 : Epoksydowanie bez ostrości

Ethers, Epoxides, Sulfides

3.7K Wyświetleń

article

11.11 : Katalizowane kwasem otwieranie pierścieni epoksydów

Ethers, Epoxides, Sulfides

6.9K Wyświetleń

article

11.12 : Katalizowane zasadą otwieranie pierścieni epoksydów

Ethers, Epoxides, Sulfides

8.1K Wyświetleń

article

11.13 : Struktura i nomenklatura tioli i siarczków

Ethers, Epoxides, Sulfides

4.5K Wyświetleń

article

11.14 : Przygotowanie i reakcje tioli

Ethers, Epoxides, Sulfides

5.8K Wyświetleń

article

11.15 : Otrzymywanie i reakcje siarczków

Ethers, Epoxides, Sulfides

4.6K Wyświetleń

JoVE Logo

Prywatność

Warunki Korzystania

Zasady

Badania

Edukacja

O JoVE

Copyright © 2025 MyJoVE Corporation. Wszelkie prawa zastrzeżone