González-Martínez Jesús R, López-Oyama Ana B, Del Ángel-López Deyanira, García-Guendulain Crescencio, Rodríguez-González Eugenio, Pulido-Barragan Eder U, Barffuson-Domínguez Felipe, Magallanes-Vallejo Aurora G, Mogica-Cantú Pablo J
Departamento de Investigación en Física (DIFUS), Universidad de Sonora, Blvd. Transversal S/N., Hermosillo 83000, Sonora, Mexico.
Centro de Investigación en Ciencia Aplicada y Tecnología Avanzada, Unidad Altamira del Instituto Politécnico Nacional, Km. 14.5 Carr. Puerto Industrial, Altamira 89600, Tamaulipas, Mexico.
Polymers (Basel). 2024 Jun 27;16(13):1827. doi: 10.3390/polym16131827.
Chitosan is a biopolymer with unique properties that have attracted considerable attention in various scientific fields in recent decades. Although chitosan is known for its poor electrical and mechanical properties, there is interest in producing chitosan-based materials reinforced with carbon-based materials to impart exceptional properties such as high electrical conductivity and high Young's modulus. This study describes the synergistic effect of carbon-based materials, such as reduced graphene oxide and carbon nanotubes, in improving the electrical, optical, and mechanical properties of chitosan-based films. Our findings demonstrate that the incorporation of reduced graphene oxide influences the crystallinity of chitosan, which considerably impacts the mechanical properties of the films. However, the incorporation of a reduced graphene oxide-carbon nanotube complex not only significantly improves the mechanical properties but also significantly improves the optical and electrical properties, as was demonstrated from the photoluminescence studies and resistivity measurements employing the four-probe technique. This is a promising prospect for the synthesis of new materials, such as biopolymer films, with potential applications in optical, electrical, and biomedical bioengineering applications.
壳聚糖是一种具有独特性质的生物聚合物,近几十年来在各个科学领域都引起了相当大的关注。尽管壳聚糖以其较差的电学和力学性能而闻名,但人们对制备用碳基材料增强的壳聚糖基材料感兴趣,以赋予其诸如高电导率和高杨氏模量等优异性能。本研究描述了诸如还原氧化石墨烯和碳纳米管等碳基材料在改善壳聚糖基薄膜的电学、光学和力学性能方面的协同效应。我们的研究结果表明,还原氧化石墨烯的掺入影响了壳聚糖的结晶度,这对薄膜的力学性能有很大影响。然而,还原氧化石墨烯 - 碳纳米管复合物的掺入不仅显著改善了力学性能,还显著改善了光学和电学性能,这从光致发光研究和采用四探针技术的电阻率测量中得到了证明。这对于合成诸如生物聚合物薄膜等新材料来说是一个有前景的展望,这些新材料在光学、电学和生物医学工程应用中具有潜在应用价值。