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Article

Fabrication of Wet-Spun Alginate/Halloysite Nanotube Composite Filaments with Tunable Morphology and Caffeine-Functionalized Nanotube Interfaces

1
Department of Chemistry ‘‘Ugo Schiff” & CSGI, University of Florence, Via della Lastruccia 3, Sesto Fiorentino, 50019 Florence, Italy
2
Institute of Condensed Matter Chemistry and Technologies for Energy (ICMATE), National Research Council (CNR), c/o Department of Chemistry, University of Padova, Via F. Marzolo 1, 35131 Padova, Italy
*
Author to whom correspondence should be addressed.
Appl. Nano 2026, 7(2), 15; https://doi.org/10.3390/applnano7020015
Submission received: 29 April 2026 / Revised: 28 May 2026 / Accepted: 3 June 2026 / Published: 5 June 2026
(This article belongs to the Collection Feature Papers for Applied Nano)

Abstract

Hybrid organic–inorganic composites based on biopolymers and nanoclays are attracting increasing interest for the development of functional materials in biomedical and agricultural applications. In this work, elongated alginate/halloysite nanotube (Alg/HNT) composite filaments were fabricated through a wet-spinning process assisted by syringe-based extrusion. Alg/HNT dispersions with different inorganic/organic ratios were first screened in terms of colloidal stability and injectability in order to identify suitable formulations for extrusion. The influence of key processing parameters, including the extrusion flow rate and calcium chloride concentration in the coagulation bath, was then systematically investigated to elucidate their effect on filament morphology and structure. Optical and scanning electron microscopy revealed that filament diameter can be tuned by varying the CaCl2 concentration, while partial alignment of alginate chains along the extrusion direction was observed. Halloysite nanotubes were homogeneously distributed within the polymer matrix, mainly as micro-sized aggregates. Finally, the nanotubes were chemically functionalized with caffeine, as a model molecule, and incorporated into the alginate filaments, demonstrating the feasibility of introducing specific functionalities into wet-spun Alg/HNT composite fibers. These results establish a reproducible strategy for the fabrication of alginate/HNT filaments with tunable morphology and functionalizable nanotube interfaces, providing a versatile platform for the development of sustainable hybrid biopolymer materials.
Keywords: alginate-based composites; 3D printing-assisted wet spinning; wet-spun hybrid fibers; injectable biopolymer; halloysite nanotubes (HNTs); alginate/HNT fibers; caffeine-functionalized HNTs; tailored surface chemistry; sustainable functional hybrid materials alginate-based composites; 3D printing-assisted wet spinning; wet-spun hybrid fibers; injectable biopolymer; halloysite nanotubes (HNTs); alginate/HNT fibers; caffeine-functionalized HNTs; tailored surface chemistry; sustainable functional hybrid materials
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MDPI and ACS Style

Mugnaini, G.; Spagli, D.; Rancan, M.; Bonini, M.; Tonelli, M. Fabrication of Wet-Spun Alginate/Halloysite Nanotube Composite Filaments with Tunable Morphology and Caffeine-Functionalized Nanotube Interfaces. Appl. Nano 2026, 7, 15. https://doi.org/10.3390/applnano7020015

AMA Style

Mugnaini G, Spagli D, Rancan M, Bonini M, Tonelli M. Fabrication of Wet-Spun Alginate/Halloysite Nanotube Composite Filaments with Tunable Morphology and Caffeine-Functionalized Nanotube Interfaces. Applied Nano. 2026; 7(2):15. https://doi.org/10.3390/applnano7020015

Chicago/Turabian Style

Mugnaini, Giulia, Davide Spagli, Marzio Rancan, Massimo Bonini, and Monica Tonelli. 2026. "Fabrication of Wet-Spun Alginate/Halloysite Nanotube Composite Filaments with Tunable Morphology and Caffeine-Functionalized Nanotube Interfaces" Applied Nano 7, no. 2: 15. https://doi.org/10.3390/applnano7020015

APA Style

Mugnaini, G., Spagli, D., Rancan, M., Bonini, M., & Tonelli, M. (2026). Fabrication of Wet-Spun Alginate/Halloysite Nanotube Composite Filaments with Tunable Morphology and Caffeine-Functionalized Nanotube Interfaces. Applied Nano, 7(2), 15. https://doi.org/10.3390/applnano7020015

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