10. The molecule, C10H14 has H NMR: 7.0 (4H, broad singlet); 2.70 õ (4H, quartet, J=7 Hz); 1.20 o (6H, triplet, J=7 Hz) IR: 745 cm1. The molecule would be; o-diethylbenzene O p-diethylbenzene O m-diethylbenzene o butylbenzene

10. The molecule, C10H14 has H NMR: 7.0 (4H, broad singlet); 2.70 õ (4H, quartet, J=7 Hz); 1.20 o (6H, triplet, J=7 Hz) IR: 745 cm1. The molecule would be; o-diethylbenzene O p-diethylbenzene O m-diethylbenzene o butylbenzene

Organic Chemistry

9th Edition

ISBN:9781305080485

Author:John E. McMurry

Publisher:John E. McMurry

Chapter12: Structure Determination: Mass Spectrometry And Infrared Spectroscopy

Section12.SE: Something Extra

Problem 18AP: In light of the nitrogen rule mentioned in Problem 12-17, what is the molecular formula of pyridine,...

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Concept explainers

Types of Chemical Bonds

The attractive force which has the ability of holding various constituent elements like atoms, ions, molecules, etc. together in different chemical species is termed as a chemical bond. Chemical compounds are dependent on the strength of chemical bonds between its constituents. Stronger the chemical bond, more will be the stability in the chemical compounds. Hence, it can be said that bonding defines the stability of chemical compounds. 

Polarizability In Organic Chemistry

Polarizability refers to the ability of an atom/molecule to distort the electron cloud of neighboring species towards itself and the process of distortion of electron cloud is known as polarization.

Coordinate Covalent Bonds

A coordinate covalent bond is also known as a dative bond, which is a type of covalent bond. It is formed between two atoms, where the two electrons required to form the bond come from the same atom resulting in a semi-polar bond. The study of coordinate covalent bond or dative bond is important to know about the special type of bonding that leads to different properties. Since covalent compounds are non-polar whereas coordinate bonds results always in polar compounds due to charge separation.

Question

100%

10. The molecule, C10H14 has H NMR: 7.0 (4H, broad
singlet); 2.70 õ (4H, quartet, J=7 Hz); 1.20 o (6H, triplet, J=7
Hz) IR: 745 cm1. The molecule would be;
o-diethylbenzene
O p-diethylbenzene
O m-diethylbenzene
o butylbenzene

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