Gisbert Roca Fernando, Martínez-Ramos Cristina, Ivashchenko Sergiy, García-Bernabé Abel, Compañ Vicente, Monleón Pradas Manuel
Center for Biomaterials and Tissue Engineering. Universitat Politècnica de València. Camino de Vera s/n, Valencia 46022, Spain.
Unitat Predepartamental de Medicina, Universitat Jaume I, 12071 Castellón de la Plana, Spain.
ACS Appl Polym Mater. 2023 Jul 12;5(8):6081-6094. doi: 10.1021/acsapm.3c00776. eCollection 2023 Aug 11.
Electroconductive materials based on poly(lactic acid) (PLA) electrospinning membranes grafted with carbon nanotubes (CNTs) functionalized with the carboxylic group R-COOH have been obtained. PLA electrospun membranes were modified with sulfuric acid (HSO) to oxidize its surface to subsequently graft the CNTs, the treatment time and drying of the membranes before grafting with CNTs being critical, influencing the final properties of the materials. SEM images showed that CNTs presented a uniform distribution on the surface of the PLA nanofibers, while FTIR spectra of PLA-CNTs materials revealed characteristic hydroxyl groups, as evidenced by absorption peaks of CNTs. Thanks to the grafting with CNTs, the resulting PLA-CNTs membranes present an improvement of the mechanical and conductive properties when compared with PLA membranes. On the one hand, grafting with CNTs causes the nanofibers to have greater rigidity, so they are more manipulable and can more easily preserve their conformation when stress is exerted. On the other hand, grafting with CNTs allows elimination of the insulating barrier of the PLA, reducing the resistivity and providing high electrical conductivity to the PLA-CNTs membranes. The incorporation of CNTs into PLA electrospun membranes is expected to offer greater functionalities to electrospun composite nanofibers for medical and industrial applications.
已制备出基于聚乳酸(PLA)电纺膜并接枝有经羧基R - COOH官能化的碳纳米管(CNT)的导电材料。用硫酸(H₂SO₄)对PLA电纺膜进行改性以氧化其表面,随后接枝CNT,接枝CNT之前膜的处理时间和干燥过程至关重要,会影响材料的最终性能。扫描电子显微镜(SEM)图像显示CNT在PLA纳米纤维表面呈现均匀分布,而PLA - CNT材料的傅里叶变换红外光谱(FTIR)显示出特征性的羟基,这由CNT的吸收峰得以证明。由于接枝了CNT,与PLA膜相比,所得的PLA - CNT膜的机械性能和导电性能有所改善。一方面,接枝CNT使纳米纤维具有更大的刚性,因此它们更易于操作,并且在施加应力时能够更轻松地保持其形态。另一方面,接枝CNT消除了PLA的绝缘屏障,降低了电阻率并为PLA - CNT膜提供了高导电性。将CNT掺入PLA电纺膜有望为用于医疗和工业应用的电纺复合纳米纤维提供更多功能。