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Preparation of Binary and Ternary Deep Eutectic Systems
Published on: October 31, 2019
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Optimizing saffron bioactive extraction with deep eutectic solvents
Atefeh Saberi1, Heidar Raissi2, Ameneh Zaboli1
1Department of chemistry, University of Birjand, Birjand, Iran.
Scientific Reports
|May 10, 2025
Summary
Deep eutectic solvents show promise for extracting bioactive compounds from saffron. Molecular dynamics simulations identified Caprylic acid + DL-menthol as the most effective solvent for key carotenoids.
Area of Science:
- Green Chemistry
- Computational Chemistry
- Natural Product Extraction
Background:
- Saffron contains valuable bioactive compounds like crocins and safranal.
- Efficient extraction methods are crucial for obtaining these compounds sustainably.
- Deep eutectic solvents (DESs) are emerging as eco-friendly alternatives for extraction.
Purpose of the Study:
- To investigate the potential of six binary deep eutectic solvents for extracting saffron bioactive components using molecular dynamics (MD) simulation.
- To understand the interactions between DESs and saffron's bioactive molecules.
- To identify the most effective DES for specific carotenoid extraction.
Main Methods:
- Molecular dynamics (MD) simulations were employed to study six different binary eutectic solvents.
- Analysis of structural and surface characteristics of DESs and bioactive molecules.
- Calculation of interaction energy values to assess extraction efficiency.
Main Results:
- The interaction between DESs and bioactive molecules is influenced by their structural and surface properties.
- Caprylic acid (CAP) + DL-menthol (DLM) demonstrated superior performance in extracting α-Carotene (ACA), β-Carotene (BCA), and Zeaxanthin (ZEA).
- Specific interaction energy values were reported for the most effective solvent-solute pairs.
Conclusions:
- Deep eutectic solvents offer a versatile and green approach for saffron bioactive component extraction.
- The choice of solvent is critical and depends on the specific target compounds.
- This research opens new avenues for sustainable engineering and chemistry in natural product extraction.
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