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Academic Journal of Materials & Chemistry, 2026, 7(1); doi: 10.25236/AJMC.2026.070112.

Preparation and Sustained-Release Properties of Panax notoginseng Leaf Saponins-Loaded Multi-Walled Carbon Nanotubes/Chitosan Composite Gel

Author(s)

Fu-neng Tan

Corresponding Author:
Fu-neng Tan
Affiliation(s)

Wenshan University, Wenshan, 663099, Yunnan, China

Abstract

To address the intrinsic drawbacks of pure drug-loaded chitosan hydrogels—namely poor mechanical strength, severe initial burst release, and insufficient structural stability—this work developed a multi-walled carbon nanotube (MWCNT)/chitosan composite hydrogel loaded with Panax notoginseng leaf saponins (LPNS). Systematic characterization of its microstructure, stability, and sustained-release performance was conducted to provide experimental support for developing local delivery carriers for active ingredients of traditional Chinese medicine. The composite hydrogel was fabricated via ultrasonic dispersion coupled with physical crosslinking. MWCNT loading was optimized using visual appearance, swelling ratio, and mechanical properties as evaluation criteria, while LPNS loading was optimized based on encapsulation efficiency and drug loading capacity. Intermolecular interactions among components were analyzed via Fourier transform infrared spectroscopy (FT-IR). Swelling kinetics, thermal stability, and in vitro drug release profiles were investigated, and the release mechanism was elucidated through kinetic modeling. At optimal loadings of 0.045 g MWCNTs and 0.07 g LPNS, the resultant composite hydrogel was homogeneously dispersed, yielding a 37.2% improvement in tensile strength relative to pure chitosan hydrogel, alongside an encapsulation efficiency of 97.47% and drug loading capacity of 3.34%. It reached a swelling ratio of 491% after 4 h of immersion in pH 7.4 PBS, and retained structural integrity after 24 h of storage at both 4 °C and 60 °C, demonstrating markedly superior stability to the pure chitosan counterpart. The in vitro release profile featured a suppressed initial burst and prolonged sustained release, with 68.3% cumulative drug release at 48 h. The release kinetics best fitted the Higuchi model (R² = 0.9912), with a Fickian diffusion-dominated release mechanism. Collectively, the incorporation of MWCNTs effectively reinforces the mechanical strength and structural stability of chitosan hydrogels and significantly retards LPNS release. This composite hydrogel holds great promise for local sustained delivery of traditional Chinese medicine active ingredients.

Keywords

Panax notoginseng leaf saponins, multi-walled carbon nanotubes , chitosan; composite gel, drug sustained release, kinetic fitting

Cite This Paper

Fu-neng Tan. Preparation and Sustained-Release Properties of Panax notoginseng Leaf Saponins-Loaded Multi-Walled Carbon Nanotubes/Chitosan Composite Gel. Academic Journal of Materials & Chemistry (2026), Vol. 7, Issue 1: 80-88. https://doi.org/10.25236/AJMC.2026.070112.

References

[1] Zhang Y, Liu M, Wang H, et al. Biodegradation and biocompatibility of chitosan-based hydrogels for biomedical applications [J]. International Journal of Biological Macromolecules, 2023, 242: 124897.

[2] Muxika A, Etxabide J, Uranga J, et al. Chitosan as a bioactive polymer: Processing, properties and applications for drug delivery [J]. International Journal of Biological Macromolecules, 2022, 213: 674-689.

[3] Liu X, Zhou J, Chen Z, et al. Reinforcement of chitosan hydrogels with functionalized multi-walled carbon nanotubes: mechanical and structural properties [J]. Journal of Materials Science: Materials in Medicine, 2024, 35(2): 45.

[4] Liu Y, Chen L, Wang H, et al. MWCNT-reinforced chitosan composite hydrogels with enhanced mechanical strength and sustained drug release performance [J]. Carbohydrate Polymers, 2023, 316: 121056.

[5] Xi Y, Yang L, Wang Y, et al. Sodium alginate/chitosan hydrogels loaded with herbal active ingredients for promoting deep second-degree scald wound healing in rats [J]. Journal of Ethnopharmacology, 2023, 307: 116245.

[6] Zhang Z, Li M, Zhou X. Dispersion behavior of multi-walled carbon nanotubes in chitosan matrix: mechanism and influencing factors [J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2023, 667: 131398.

[7] Chen M, Zhao X, Li Y. Effect of nanofiller loading on swelling kinetics and network structure of chitosan composite hydrogels [J]. Journal of Applied Polymer Science, 2023, 140(24): e54127.

[8] Li Y, Sun H, Zhao J, et al. Mechanical enhancement of polymer hydrogels via carbon nanotube-reinforced photopolymerized network [J]. Polymer Testing, 2023, 124: 108075.

[9] Jiang K, Ding M, Ye T, et al. Sustained-release properties of β-chitosan hydrogel carriers for hydrophilic active ingredients [J]. International Journal of Pharmaceutics, 2022, 624: 121986.

[10] Zhao G, Yang J, Wang Y, et al. Interfacial interactions and electromechanical properties of chitosan/carbon nanotube composite hydrogel actuators [J]. Sensors and Actuators A: Physical, 2023, 356: 114362.

[11] Srivastava A, Mishra S. Thermal and mechanical stability of carbon nanotube-reinforced chitosan hydrogels [J]. Thermochimica Acta, 2022, 713: 179236.

[12] Nithya S, Nimal T, Baranwal G, et al. Sustained release and antibacterial efficacy of bioactive-loaded chitosan composite hydrogels [J]. International Journal of Biological Macromolecules, 2024, 263: 130215.

[13] Wang L, Wu X, Ma L, et al. Thermosensitive chitosan/sodium glycerophosphate hydrogels for sustained protein delivery: release kinetics and mechanism [J]. International Journal of Biological Macromolecules, 2022, 219: 847-856.