A Computational Study of the Structures and Electrostatic Potentials of Some Azines and Nitroazines

Abstract

An ab initio SCF computational approach is used to study six azines (azabenzenes) and their mononitro derivatives. Our primary interest is in determining how the reactive properties of the azines are affected by the introduction of the nitro group. All structures are optimized at the 3-21G level, and these are then used to compute the STO-5G molecular electrostatic potentials. Among the various isomers those having two adjacent ring nitrogens are by far the least stable. The nitro derivatives are most stable when substituent is beta to a ring nitrogen and least when it is alpha. The dominant features of the electrostatic potentials of these molecules are the large and strong negative regions, centered in the molecular planes, that are associated with the ring of nitrogens and are indicative of their basic characters. These negative potentials, and correspondingly the basicities, become weaker as the number of ring nitrogens increases and also with the substitution of the electron-withdrawing nitro groups. The regions above and below the ring become increasingly positive in going from the mono- to the tetra-azine and with the introduction of the -NO2 group, suggesting enhanced susceptibility to nucleophilic attack.

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Document Details

Document Type
Technical Report
Publication Date
Jan 01, 1989
Accession Number
ADA210318

Entities

People

  • Jane S. Murray
  • Jorge M. Seminario
  • Peter Politzer

Organizations

  • University of New Orleans

Tags

Communities of Interest

  • Air Platforms

DTIC Thesaurus Topics

  • Azines
  • Chemical Synthesis
  • Chemistry
  • Contracts
  • Electrons
  • Elements
  • Energy
  • Free Energy
  • Molecules
  • New York
  • Nitrobenzenes
  • Nitrogen
  • Organic Chemistry
  • Physical Properties
  • Pyridines
  • United States
  • Universities

Fields of Study

  • Chemistry

Readers

  • Organic Chemistry
  • Quantum Chemistry

Technology Areas

  • 5G
  • 5G - Internet of Things
  • Microelectronics
  • Microelectronics - Graphene