Esfahani Hamid, Jose Rajan, Ramakrishna Seeram
Department of Materials Engineering, Bu-Ali Sina University, Hamedan 65178-38695, Iran.
Faculty of Industrial Sciences & Technology, Universiti Malaysia Pahang, Lebuhraya Tun Razak, Gambang 26300, Kuantan, Malaysia.
Materials (Basel). 2017 Oct 27;10(11):1238. doi: 10.3390/ma10111238.
Ceramic nanofibers (NFs) have recently been developed for advanced applications due to their unique properties. In this article, we review developments in electrospun ceramic NFs with regard to their fabrication process, properties, and applications. We find that surface activity of electrospun ceramic NFs is improved by post pyrolysis, hydrothermal, and carbothermal processes. Also, when combined with another surface modification methods, electrospun ceramic NFs result in the advancement of properties and widening of the application domains. With the decrease in diameter and length of a fiber, many properties of fibrous materials are modified; characteristics of such ceramic NFs are different from their wide and long (bulk) counterparts. In this article, electrospun ceramic NFs are reviewed with an emphasis on their applications as catalysts, membranes, sensors, biomaterials, fuel cells, batteries, supercapacitors, energy harvesting systems, electric and magnetic parts, conductive wires, and wearable electronic textiles. Furthermore, properties of ceramic nanofibers, which enable the above applications, and techniques to characterize them are briefly outlined.
陶瓷纳米纤维(NFs)由于其独特的性能,最近已被开发用于先进应用。在本文中,我们综述了电纺陶瓷纳米纤维在制造工艺、性能和应用方面的进展。我们发现,通过热解后处理、水热和碳热工艺可以提高电纺陶瓷纳米纤维的表面活性。此外,当与其他表面改性方法结合使用时,电纺陶瓷纳米纤维会使性能得到提升,应用领域得到拓宽。随着纤维直径和长度的减小,纤维材料的许多性能会发生改变;此类陶瓷纳米纤维的特性与其宽而长的(块状)对应物不同。在本文中,我们对电纺陶瓷纳米纤维进行了综述,重点介绍了它们作为催化剂、膜、传感器、生物材料、燃料电池、电池、超级电容器、能量收集系统、电气和磁性部件、导线以及可穿戴电子纺织品的应用。此外,还简要概述了使上述应用成为可能的陶瓷纳米纤维的性能及其表征技术。