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ortho–para-Directing Activators: –CH3, –OH, –⁠NH2, –OCH301:11

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All ortho–para directors, excluding halogens, are activating groups. These groups donate electrons to the ring, making the ring carbons electron-rich. Consequently, the reactivity of the aromatic ring towards electrophilic substitution increases. For instance, the nitration of anisole is about 10,000 times faster than the nitration of benzene. The electron-donating effect of the methoxy group in anisole activates the ortho and para positions on the ring and stabilizes the corresponding...
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The reaction of weakly electrophilic aryldiazonium (also called arenediazonium) salts with highly activated aromatic compounds leads to the formation of products with an —N=N— link, called an azo linkage. This reaction, presented in Figure 1, is known as diazo coupling and occurs without the loss of the nitrogen atoms of the aryldiazonium salt. Highly activated aromatic compounds such as phenols or arylamines favor the diazo coupling reaction. The coupling generally occurs at the...
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Color in Coordination Complexes
When atoms or molecules absorb light at the proper frequency, their electrons are excited to higher-energy orbitals. For many main group atoms and molecules, the absorbed photons are in the ultraviolet range of the electromagnetic spectrum, which cannot be detected by the human eye. For coordination compounds, the energy difference between the d orbitals often allows photons in the visible range to be absorbed and emitted, which is seen as colors by the human...
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Nucleophilic Aromatic Substitution of Aryldiazonium Salts: Aromatic SN101:14

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Treating arylamines with nitrous acid gives aryldiazonium salts that are effective substrates in nucleophilic aromatic substitution reactions. The diazonio group in these salts can be easily displaced by different nucleophiles, yielding a wide variety of substituted benzenes. The leaving group departs as nitrogen gas, and this easy elimination is the driving force for the substitution reaction.
In the Sandmeyer reaction, for example, the diazonio group is replaced by a chloro, bromo,...
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Valence Bond Theory02:42

Valence Bond Theory

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Coordination compounds and complexes exhibit different colors, geometries, and magnetic behavior, depending on the metal atom/ion and ligands from which they are composed. In an attempt to explain the bonding and structure of coordination complexes, Linus Pauling proposed the valence bond theory, or VBT, using the concepts of hybridization and the overlapping of the atomic orbitals. According to VBT, the central metal atom or ion (Lewis acid) hybridizes to provide empty orbitals of suitable...
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π Electron Effects on Chemical Shift: Aromatic and Antiaromatic Compounds01:14

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In aromatic compounds, such as benzene, the circulation of (4n + 2) π-electrons sets up a diamagnetic or diatropic ring current around the perimeter of the molecule. This current induces a magnetic field that opposes the external field inside the ring and reinforces it on the outside. The protons in benzene are deshielded and exhibit high chemical shifts in the range 6.5–8.5 ppm. The shielding effect at the center of the ring is evident in complex aromatic molecules, such as...
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Related Experiment Video

Updated: Oct 13, 2025

Thermochemical Studies of NiII and ZnII Ternary Complexes Using Ion Mobility-Mass Spectrometry
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Multi-stimuli-responsive Zn(II)-Schiff base complexes adjusted by rotatable aromatic rings.

Han-Wen Zheng1, Dong-Dong Yang1, Qiong-Fang Liang1

  • 1Beijing Key Laboratory of Energy Conversion and Storage Materials, College of Chemistry, Beijing Normal University, Beijing 100875, P. R. China. xjzheng@bnu.edu.cn.

Dalton Transactions (Cambridge, England : 2003)
|November 12, 2021
PubMed
Summary

New zinc(II) complexes with Schiff bases show tunable mechanochromic luminescence (MCL) and acidochromism. Ligand conformation influences MCL, enabling potential applications in smart fluorescent materials.

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Area of Science:

  • Materials Science
  • Coordination Chemistry
  • Luminescence

Background:

  • Multifunctional luminescent materials are of significant interest.
  • Understanding the mechanisms behind their properties is crucial for further development.

Purpose of the Study:

  • Design and synthesize novel Zn(II) complexes with Schiff base ligands.
  • Investigate their mechanochromic luminescence (MCL) and acidochromic properties.
  • Elucidate the structure-property relationships governing these stimuli-responsive behaviors.

Main Methods:

  • Synthesis of three Zn(II) complexes using Schiff base ligands (HL^1 and HL^2) with rotatable aromatic rings.
  • Crystallographic analysis to determine conformations and packing structures.
  • Mechanical (grinding) and chemical (acid/base) stimuli applied to observe luminescence changes.
  • Spectroscopic characterization of luminescence properties.

Main Results:

  • Two polymorphs of ZnL^1_2 (ZnL^1_2 and ZnL^1a_2) exhibited distinct MCL properties, with ZnL^1_2 showing high contrast.
  • Ligand conformation (twisted vs. planar) and crystal packing influenced MCL.
  • Crystal phase transformation between polymorphs was achieved via grinding/fuming.
  • Introduction of a methylene group in HL^2 enhanced MCL.
  • Acidochromism was attributed to ligand generation via reaction with HCl gas.

Conclusions:

  • The study demonstrates the successful design of Zn(II) complexes with tunable mechanochromic and acidochromic luminescence.
  • Ligand conformation and crystal packing are key factors controlling MCL.
  • These materials show potential for smart fluorescent applications and provide insights for designing multi-stimuli responsive molecules.