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The compound having an M + 1 ion at m / z = 136 in its CI mass spectrum and an IR absorption at 3279 cm − 1 is to be identified. Concept introduction: In NMR spectroscopy, every nucleus has a spin. There is an angular momentum related to the spin. The difference between its resonance frequency and that of the reference standard is known as the chemical shift of a nucleus. The chemical shift value depended upon its surrounded protons.

The compound having an M + 1 ion at m / z = 136 in its CI mass spectrum and an IR absorption at 3279 cm − 1 is to be identified. Concept introduction: In NMR spectroscopy, every nucleus has a spin. There is an angular momentum related to the spin. The difference between its resonance frequency and that of the reference standard is known as the chemical shift of a nucleus. The chemical shift value depended upon its surrounded protons.

Solution Summary: The author explains that every nucleus has a spin, and the difference between its resonance frequency and that of the reference standard is known as the chemical shift.

Organic Chemistry

Organic Chemistry

6th Edition

ISBN: 9781936221349

Author: Marc Loudon, Jim Parise

Publisher: W. H. Freeman

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NMR Spectroscopy

NMR stands for Nuclear Magnetic Resonance in which the study of different molecules is done based on the interaction of radiofrequency electromagnetic radiations with the nuclei of molecules placed in a strong magnetic field. A precise study of spectra o…

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Chapter 23, Problem 23.4P

Interpretation Introduction

Interpretation:

The compound having an M+1 ion at m/z=136 in its CI mass spectrum and an IR absorption at 3279 cm−1 is to be identified.

Concept introduction:

In NMR spectroscopy, every nucleus has a spin. There is an angular momentum related to the spin. The difference between its resonance frequency and that of the reference standard is known as the chemical shift of a nucleus. The chemical shift value depended upon its surrounded protons.

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Chapter 23, Problem 23.3P

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Chapter 23 Solutions

Organic Chemistry

Ch. 23 - Prob. 23.1P Ch. 23 - Prob. 23.2P Ch. 23 - Prob. 23.3P Ch. 23 - Prob. 23.4P Ch. 23 - Prob. 23.5P Ch. 23 - Prob. 23.6P Ch. 23 - Prob. 23.7P Ch. 23 - Prob. 23.8P Ch. 23 - Prob. 23.9P Ch. 23 - Prob. 23.10P

Ch. 23 - Prob. 23.11P Ch. 23 - Prob. 23.12P Ch. 23 - Prob. 23.13P Ch. 23 - Prob. 23.14P Ch. 23 - Prob. 23.15P Ch. 23 - Prob. 23.16P Ch. 23 - Prob. 23.17P Ch. 23 - Prob. 23.18P Ch. 23 - Prob. 23.19P Ch. 23 - Prob. 23.20P Ch. 23 - Prob. 23.21P Ch. 23 - Prob. 23.22P Ch. 23 - Prob. 23.23P Ch. 23 - Prob. 23.24P Ch. 23 - Prob. 23.25P Ch. 23 - Prob. 23.26P Ch. 23 - Prob. 23.27P Ch. 23 - Prob. 23.28P Ch. 23 - Prob. 23.29P Ch. 23 - Prob. 23.30P Ch. 23 - Prob. 23.31P Ch. 23 - Prob. 23.32P Ch. 23 - Prob. 23.33P Ch. 23 - Prob. 23.34P Ch. 23 - Prob. 23.35P Ch. 23 - Prob. 23.36P Ch. 23 - Prob. 23.37P Ch. 23 - Prob. 23.38P Ch. 23 - Prob. 23.39P Ch. 23 - Prob. 23.40P Ch. 23 - Prob. 23.41P Ch. 23 - Prob. 23.42P Ch. 23 - Prob. 23.43P Ch. 23 - Prob. 23.44AP Ch. 23 - Prob. 23.45AP Ch. 23 - Prob. 23.46AP Ch. 23 - Prob. 23.47AP Ch. 23 - Prob. 23.48AP Ch. 23 - Prob. 23.49AP Ch. 23 - Prob. 23.50AP Ch. 23 - Prob. 23.51AP Ch. 23 - Prob. 23.52AP Ch. 23 - Prob. 23.53AP Ch. 23 - Prob. 23.54AP Ch. 23 - Prob. 23.55AP Ch. 23 - Prob. 23.56AP Ch. 23 - Prob. 23.57AP Ch. 23 - Prob. 23.58AP Ch. 23 - Prob. 23.59AP Ch. 23 - Prob. 23.60AP Ch. 23 - Prob. 23.61AP Ch. 23 - Prob. 23.62AP Ch. 23 - Prob. 23.63AP Ch. 23 - Prob. 23.64AP Ch. 23 - Prob. 23.65AP Ch. 23 - Prob. 23.66AP Ch. 23 - Prob. 23.67AP Ch. 23 - Prob. 23.68AP Ch. 23 - Prob. 23.69AP Ch. 23 - Prob. 23.70AP Ch. 23 - Prob. 23.71AP Ch. 23 - Prob. 23.72AP Ch. 23 - Prob. 23.73AP Ch. 23 - Prob. 23.74AP Ch. 23 - Prob. 23.75AP Ch. 23 - Prob. 23.76AP Ch. 23 - Prob. 23.77AP Ch. 23 - Prob. 23.78AP Ch. 23 - Prob. 23.79AP Ch. 23 - Prob. 23.80AP Ch. 23 - Prob. 23.81AP

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NMR Spectroscopy; Author: Professor Dave Explains;https://www.youtube.com/watch?v=SBir5wUS3Bo;License: Standard YouTube License, CC-BY