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Complexation Equilibria: The Chelate Effect01:19

Complexation Equilibria: The Chelate Effect

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In complexation reactions, metal atoms or cations interact with ligands to form donor-acceptor adducts called metal complexes. Ligands that bind through one donor site are monodentate, ligands with two donor sites are bidentate, and those with more than two donor sites are polydentate ligands. For example, ethylene diamine is a bidentate ligand that binds through two nitrogen donor atoms, forming a five-membered ring. EDTA is a polydentate ligand that binds through four oxygen and two nitrogen...
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EDTA: Chemistry and Properties01:22

EDTA: Chemistry and Properties

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Polydentate ligands are most widely used in complexometric titrations because they form more stable complexes with the metal ions than mono- or bidentate ligands due to the chelate effect. Examples of polydentate ligands are ethylenediaminetetraacetic acid (EDTA), crown ethers, and cryptands. The most important feature of optimal polydentate ligands is the ability to form 1:1 complexes in a single-step process. Amino carboxylic acid derivatives are frequently used as complexing agents. EDTA is...
3.8K
Cellulose and Pectic Polysaccharides01:15

Cellulose and Pectic Polysaccharides

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 Every plant cell has a cell wall that protects the cell, provides structural support, and gives the cell shape. Cellulose, the main structural component of the plant cell wall, makes up over 30% of plant matter. It is the most abundant organic compound on earth.  Cellulose is an unbranched polysaccharide composed of linear chains of glucose molecules linked by β (1→4) glycosidic bonds.
As a cell matures, its cell wall specializes according to its type. For example, the...
5.2K
Complexometric Titration: Ligands00:43

Complexometric Titration: Ligands

2.6K
Different monodentate and polydentate ligands are used as complexing agents in complexometric titration reactions. The formation of complexes by mono- and bidentate ligands involves two or more intermediate steps, limiting their use as complexing agents. In comparison, polydentate ligands can form complexes with metal ions in a single-step process, facilitating sharper end points. This means polydentate ligands, such as amino carboxylic acid derivatives, are most commonly employed in...
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Ion Exchange01:17

Ion Exchange

1.5K
Ion exchange chromatography separates charged molecules from a solution by reversibly exchanging them with mobile, or 'active', ions associated with the oppositely charged stationary phase. This method can be used to separate ions, soften and deionize water, and purify solutions. The polymers comprising the ion-exchange column are high-molecular-weight and chemically stable polymers, crosslinked to be porous and essentially insoluble. They are also functionalized with either acidic or...
1.5K
Extraction: Advanced Methods00:56

Extraction: Advanced Methods

1.3K
Metal ions can be separated from one another by complexation with organic ligands–the chelating agent– to form uncharged chelates. Here, the chelating agent must contain hydrophobic groups and behave as a weak acid, losing a proton to bind with the metal. Since most organic ligands used in this process are insoluble or undergo oxidation in the aqueous phase, the chelating agent is initially added to the organic phase and extracted into the aqueous phase. The metal-ligand complex is...
1.3K

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Related Experiment Video

Updated: Mar 22, 2026

Assembly and Characterization of Polyelectrolyte Complex Micelles
08:44

Assembly and Characterization of Polyelectrolyte Complex Micelles

Published on: March 2, 2020

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New polyelectrolyte complex from pectin/chitosan and montmorillonite clay.

Marcia Parente Melo da Costa1, Ivana Lourenço de Mello Ferreira1, Mauricio Tavares de Macedo Cruz1

  • 1Instituto de Química, Universidade do Estado do Rio de Janeiro, Rua São Francisco Xavier, 524, PHLC, sala 310, Maracanã, 20550-900 Rio de Janeiro, Brazil.

Carbohydrate Polymers
|April 27, 2016
PubMed
Summary

This study developed a novel superabsorbent nanocomposite hydrogel using chitosan, pectin, and montmorillonite clay. The clay enhanced thermal stability and mechanical strength, showing potential for advanced material applications.

Keywords:
ChitosanClayMorphological propertiesPectinSuperabsorbent materialThermal stability

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Area of Science:

  • Materials Science
  • Polymer Chemistry

Background:

  • Hydrogels are versatile materials with applications in various fields.
  • Developing advanced hydrogels with improved properties is an ongoing research area.

Purpose of the Study:

  • To synthesize and characterize a novel nanocomposite hydrogel based on chitosan, pectin, and montmorillonite clay.
  • To investigate the effect of clay concentration and polymer ratios on the hydrogel properties.

Main Methods:

  • Nanocomposite hydrogels were prepared via crosslinking chitosan and pectin in the presence of montmorillonite clay.
  • Characterization involved electron microscopy (SEM, TEM), XRD, TGA, FTIR, swelling tests, and compression tests.
  • The influence of varying clay concentrations (0.5-2% wt) and polymer ratios (1:1, 1:2, 2:1) was systematically studied.

Main Results:

  • Most hydrogels exhibited superabsorbent properties with swelling degrees exceeding 1000%.
  • Electron microscopy confirmed the presence of clay nanoparticles and revealed porous, differentiated morphologies.
  • Thermogravimetric analysis and compression tests indicated increased thermal stability and mechanical strength with clay incorporation.

Conclusions:

  • The developed nanocomposite hydrogel demonstrates excellent swelling capacity, thermal stability, and mechanical strength.
  • Montmorillonite clay incorporation significantly enhances the properties of chitosan-pectin hydrogels.
  • These findings suggest potential applications for these advanced hydrogels in areas requiring superabsorbent and mechanically robust materials.