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Comparative Effects of Microalgal Incorporation on the Rheological, Microstructural, and Colorimetric Behavior of
Sally Fawaz1,2, Francesc Sepulcre1, Amira Haddarah2
1Departament d'Enginyeria Agroalimentària i Biotecnologia, Universitat Politècnica de Catalunya, Campus del Baix Llobregat, Carrer Esteve Terradas 8, Castelldefels, 08860 Barcelona, Spain.
Abstract:
The development of sustainable, nutrient-dense food systems requires a comprehensive understanding of how microalgae influence the mechanical properties of starch hydrogels. While certain microalgae are common food additives, a critical research gap remains regarding their effect on the rheological behavior and structural integrity of potato starch gels specifically. This study addressed this gap by evaluating the mechanical, microstructural and optical impacts of Arthrospira platensis (commonly known as Spirulina) and Chlorella vulgaris at 0.5%, 1% and 2% (w/w). Utilizing steady-shear flow tests, colorimetry, NIR spectroscopy and microscopy, we characterized changes in steady rheological parameters, color, chemical changes and microstructure of fortified hydrogels. Results indicated that filamentous Arthrospira platensis reinforces the matrix, significantly increasing yield stress from 10.2 Pa in the control to 32.4 Pa at 2% inclusion. In contrast, spherical Chlorella vulgaris appears to act as a structural filler, reducing yield stress to 4.8 Pa at 2%. Microscopy confirmed these morphological influences, showing Arthrospira platensis filaments entangling granules while Chlorella cells integrated into inter-granular spaces. Colorimetry revealed significant darkening (L* decreased from 31.59 to 18.54 at 2% Spirulina addition) and significant greening (p < 0.05). NIR spectroscopy demonstrated potential physical interactions via vibrational markers at 5172 cm-1 and 5646 cm-1, indicating water matrix redistribution within the system. This research demonstrates how incorporating Spirulina and Chlorella vulgaris provides a viable approach for modifying the physical properties of starch-based matrices. The findings indicate that Spirulina enhances flow resistance and structural stability under steady shear, whereas Chlorella vulgaris reduces flow barriers, thereby increasing the spreadability of these composite food systems.

