Smart NADES for Solvent Reuse: Astaxanthin Extraction from Haematococcus pluvialis Using Fatty Acid-Based Systems
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Universiti Malaysia Sabah
Abstract
Various health issues, closely associated with excessive oxidative stress, have created an
increasing demand for efficient natural antioxidants such as astaxanthin. However, the extraction of
this potent lipophilic compound from natural sources typically relies on toxic and volatile organic
solvents, which limits process sustainability and safety. In addition, once extracted, the separation of
the compound from the solvent phase remains a major challenge due to strong analyte-solvent
interactions. To overcome these limitations, a fatty acid-based natural deep eutectic solvent was
developed and evaluated as a green alternative that enables both efficient astaxanthin extraction and
its subsequent recovery. The eutectic mixture, composed of mid-chain fatty acids, octanoic and
nonanoic acid, was selected due to their lipophilic character and strong affinity toward the lipophilic
astaxanthin. The solvent exhibits tunable polarity, which allows controlled separation of astaxanthin
from the obtained extract. The extraction procedure was conducted under mild thermal and
mechanical conditions, using solid-liquid extraction with magnetic stirring, and the process was
optimized using response surface methodology and the Box- Behnken design to achieve maximal
astaxanthin yield from the algal biomass (Haematococcus pluvialis). Polarity switching was induced
by the controlled addition of a hydrogen bond-accepting amine, resulting in rapid carotenoid
crystallization and solvent regeneration. The obtained results demonstrated that the fatty acid-based
eutectic solvent achieved extraction efficiency comparable to conventional organic solvents such as
acetone and ethanol, with the added benefit of simple astaxanthin recovery and solvent reuse through
polarity switching. This dual functionality highlights the potential of such natural deep eutectic
solvents as sustainable and versatile alternatives for the valorization of natural bioactive compounds.
The presented approach supports the transition toward environmentally responsible extraction
practices aligned with the principles of green chemistry and circular bioeconomy, contributing to the
development of safer and more sustainable food and nutraceutical products.