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April 18, 2026Gels0 citationsOpen Access

Cellulose Nanofibers Enhanced the Physicochemical Properties of Tannin Fe3+ Chitosan Composite Films for Tomato Preservation

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PFPanpan FengJLJianguo LinYRYan Ran

Key Points

  • This research aims to enhance the mechanical strength and moisture resistance of chitosan-based edible films using cellulose nanofibers.
  • Developed ternary composite films with varying cellulose nanofiber ratios (0-30%).
  • Evaluated physicochemical properties like tensile strength, swelling ratio, and water contact angle.
  • Conducted tomato preservation assays comparing different film formulations.
  • CSTF-CNF20 film achieved the highest tensile strength of 27.60 MPa.
  • Swelling ratio decreased significantly from 675.5% to 120.9%.
  • Water contact angle increased to 113.7° and DPPH scavenging activity remained above 85%.
  • CSTF-CNF20 coating effectively reduced weight loss and maintained tomato firmness and surface color.

Abstract

To address inherent limitations of chitosan-based edible films, including inadequate mechanical strength and poor moisture resistance, cellulose nanofibers (CNF) were employed as a synergistic film-forming component to partially substitute chitosan in the fabrication of ternary composite films (denoted as CSTF-CNFs). This approach was based on a previously developed chitosan matrix modified with tannin-Fe3+ nanoparticles (TF). It was hypothesized that CNF could function as a reinforcing scaffold to improve the dispersion of TF within the film matrix and, through hydrogen bonding and physical entanglement, form an interpenetrating fiber network with chitosan, thereby enhancing the structural and barrier properties of the films. The present study systematically evaluated the influence of varying CNF substitution ratios (0–30%) on the physicochemical characteristics of the resulting composite films and their performance in tomato preservation. The results demonstrated that an appropriate CNF incorporation facilitated the formation of a dense, cross-linked network with chitosan and TF via hydrogen bond interactions, significantly improving both mechanical strength and water resistance. Among all formulations, the CSTF-CNF20 film exhibited optimal comprehensive performance, achieving the highest tensile strength of 27.60 MPa. Moreover, its swelling ratio markedly decreased from 675.5% (CSTF-CNF0) to 120.9%, while the water contact angle increased to 113.7°, and the DPPH radical scavenging activity remained above 85%. Tomato preservation assays revealed that, in comparison with the untreated control and polyethylene film-wrapped groups, the application of CSTF-CNF20 coating effectively mitigated the decline in weight loss and firmness, preserved surface color integrity, and resulted in the highest L* value alongside the lowest soluble solids content. These findings suggest that the synergistic integration of CNF with nano-scale metal–phenolic networks offers a viable strategy for developing high-performance chitosan-based edible films. The CSTF-CNF20 composite film holds significant promise for application in the postharvest preservation of fruits and vegetables.

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Cite This Study

Feng et al. (2026) studied this question.

synapsesocial.com/papers/69e3215140886becb65408fbhttps://doi.org/10.3390/gels12040333
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