Ghosal Kajal, Chandra Aniruddha, G Praveen, S Snigdha, Roy Sudeep, Agatemor Christian, Thomas Sabu, Provaznik Ivo
Center for Nanoscience and Nanotechnology, Mahatma Gandhi University, Priyadarshini Hill, Kottayam, 686560, Kerala, India.
Electronics and Communication Engineering Department, National Institute of Technology, Durgapur, 713209, West Bengal, India.
Sci Rep. 2018 Mar 22;8(1):5058. doi: 10.1038/s41598-018-23378-3.
We put forth our opinion regarding the enhanced plasticity and modulation of mechanical properties of polymeric films obtained through electrospinning process in this article. In majority of the pharmaceutical, biomedical, and packaging applications, it is desirable that polymer based matrices should be soft, flexible, and have a moderate toughness. In order to convert inflexible and brittle polymers, adjuvants in the form of plasticizers are added to improve the flexibility and smoothness of solvent casted polymer films. However, many of these plasticizers are under scrutiny for their toxic effects and environmental hazards. In addition, plasticizers also increase the cost of end products. This has motivated the scientific community to investigate alternate approaches. The changes imparted in membrane casted by electrospinning were tried to be proved by SEM, Mechanical property study, DSC and XRD studies. We have showed dramatic improvement in flexibility of poly(ε-caprolactone) based nanofiber matrix prepared by electrospinning method whereas solvent casting method without any plasticizer produced very brittle, inflexible film of PCL. Modulation capacity of mechanical properties is also recorded. We tried to support our opinion by citing several similar findings available in the open literature. The electrospinning method helps in plasticization and in tuning mechanical properties.
在本文中,我们就通过静电纺丝工艺获得的聚合物薄膜增强的可塑性和机械性能调节提出了我们的观点。在大多数制药、生物医学和包装应用中,基于聚合物的基质应柔软、灵活且具有适度的韧性,这是很理想的。为了使刚性和脆性聚合物变得柔韧,会添加增塑剂形式的助剂以提高溶剂浇铸聚合物薄膜的柔韧性和平滑度。然而,这些增塑剂中的许多因其毒性作用和环境危害而受到审查。此外,增塑剂还会增加最终产品的成本。这促使科学界研究替代方法。通过扫描电子显微镜(SEM)、机械性能研究、差示扫描量热法(DSC)和X射线衍射(XRD)研究试图证明静电纺丝法制备的膜所产生的变化。我们已经表明,通过静电纺丝法制备的聚己内酯基纳米纤维基质的柔韧性有了显著提高,而没有任何增塑剂的溶剂浇铸法制备的聚己内酯薄膜非常脆且缺乏柔韧性。还记录了机械性能的调节能力。我们试图通过引用公开文献中一些类似的研究结果来支持我们的观点。静电纺丝法有助于实现增塑和调节机械性能。