PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 6, 2026International Journal of Biological Macromolecules0 citationsOpen Access

Natural deep eutectic solvent-assisted incorporation of anthocyanins into cellulose acetate nanofibers for halochromic sensors

View Full Paper
MBMirella Romanelli Vicente Bertolo-CagnotoAAAugusto D. AlvarengaLCLaís Angelice de Camargo

Key Points

  • This research aims to develop cellulose acetate nanofibers enriched with anthocyanins for use as halochromic sensors in food packaging.
  • Developed cellulose acetate-based nanofibers through solution blow spinning using natural deep eutectic solvents.
  • Incorporated anthocyanins from grape pomace, sweet potato, and black carrot into cellulose acetate solutions.
  • Characterized the morphological, thermal, and water-related properties of the nanofibers.
  • Analyzed colorimetric responses to ammonia vapor exposure.
  • Anthocyanins integrated into cellulose acetate nanofibers increased hydrophilicity and solubility.
  • CA nanofibers with black carrot anthocyanins exhibited the highest color change sensitivity to ammonia (ΔE = 24.60 ± 0.50).
  • Demonstrated capability for salmon spoilage monitoring with significant color change after specified durations at varying temperatures.

Abstract

Intelligent food packaging can help reduce food waste by providing consumers real-time information about product freshness. They can be produced using natural pigments with pH-dependent color changes, which makes them promising candidates for colorimetric sensors. This study reports the development, through solution blow spinning (SBS), of cellulose acetate (CA)-based nanofibers loaded with anthocyanins solubilized in natural deep eutectic solvents (NADES). CA nanofibers were obtained by SBS using CA/PEO (polyethylene oxide) co-solutions, followed by PEO removal. Anthocyanins from grape pomace (GP), sweet potato (SP), and black carrot (BC) were incorporated into pectin solutions solubilized in a choline chloride–glycerol NADES (CC-GLY). The halochromic sensors were characterized regarding their morphological, thermal, and water-related properties. Anthocyanins incorporation decreased CA onset degradation temperatures and increased its melting enthalpy, suggesting improved chain packing. The fibers containing anthocyanins were more hydrophilic and more soluble. Exposure to ammonia vapor produced visible colorimetric responses, with CA/BC achieving the highest ΔE values (24.60 ± 0.50) and a detection limit as low as 1.73 × 10 −6 mol L −1 . Finally, a proof-of-concept assay confirmed CA/BC applicability for monitoring salmon spoilage via headspace exposure (ΔE = 26.52 ± 0.97) after 144 h at 4 °C and ΔE = 28.49 ± 1.04 after 48 h at 25 °C). The results demonstrate that CA nanofibers doped with anthocyanins are promising natural materials for intelligent packaging applications, enabling prompt and sensitive detection of food spoilage. • Anthocyanin-loaded CA nanofibers were developed via solution blow spinning. • NADES enabled efficient anthocyanin incorporation into CA-based nanofibers. • Sensors exhibited rapid, visible color changes under alkaline spoilage conditions. • Nanofibers with anthocyanins from black carrots showed the highest ammonia sensitivity. • The system offers a promising strategy for intelligent salmon freshness monitoring.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Bertolo-Cagnoto et al. (2026) studied this question.

synapsesocial.com/papers/69aa7066531e4c4a9ff5a307https://doi.org/10.1016/j.ijbiomac.2026.151192
Ask AI
Helpful
Bookmark
Share
View Full Paper