The hybrid orbital that is utilized by the carbon in anthracene is .
The anthracene molecule contains bonds and bonds.
The number of valence electrons in sigma orbital is and pi-orbitals is .
Further explanation:
The anthracene is a crystalline compound and it is yellow in color. It contains three fused rings of benzene thus it is a polyaromatic compound.it has a molecular formula .
Prediction of hybridization:
The hybridization can be determined by calculating the number of hybrid orbitals (X) which is to be formed by the atom. The formula to calculate the number of hybrid orbitals (X) as follows:
Here X is a steric number.
When X is 2 then hybridization is sp.
When X is 3 then hybridization is .
When X is 4 then hybridization is .
The structure of anthracene is attached in the image.
Since all carbon atom in anthracene contains three bond pairs and no lone pair thus, the hybridization can be calculated as follows:
The value of X is 3, therefore, the hybridization of each carbon in anthracene is
The structure of anthracene contains 26 sigma bond and 7 pi bonds. (refer to the image attached).
The number of valance electron in sigma orbital is twice of the number of sigma bond present in the molecule because every sigma bond contains 2 electrons.
In anthracene, number of sigma bond is 26, therefore,
The number of valance electron present in pi-orbital is twice of the number of pi bond present in the molecule because every pi-bond contains 2 electrons.
In anthracene, number of pi bond is 7, therefore,
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Answer details:
Grade: Senior school
Subject: Chemistry
Chapter: Covalent bonding
Keywords: Anthracene, yellow crystalline, coal tar, structure of anthracene, C14H10, hybrid orbitals.