Mashentseva Anastassiya A, Sutekin Duygu S, Rakisheva Saniya R, Barsbay Murat
The Institute of Nuclear Physics of the Republic of Kazakhstan, Almaty 050032, Kazakhstan.
Department of Nuclear Physics, New Materials, and Technologies, L. N. Gumilyov Eurasian National University, Astana 010008, Kazakhstan.
Polymers (Basel). 2024 Sep 15;16(18):2616. doi: 10.3390/polym16182616.
Composite track-etched membranes (CTeMs) emerged as a versatile and high-performance class of materials, combining the precise pore structures of traditional track-etched membranes (TeMs) with the enhanced functionalities of integrated nanomaterials. This review provides a comprehensive overview of the synthesis, functionalization, and applications of CTeMs. By incorporating functional phases such as metal nanoparticles and conductive nanostructures, CTeMs exhibit improved performance in various domains. In environmental remediation, CTeMs effectively capture and decompose pollutants, offering both separation and detoxification. In sensor technology, they have the potential to provide high sensitivity and selectivity, essential for accurate detection in medical and environmental applications. For energy storage, CTeMs may be promising in enhancing ion transport, flexibility, and mechanical stability, addressing key issues in battery and supercapacitor performance. Biomedical applications may benefit from the versality of CTeMs, potentially supporting advanced drug delivery systems and tissue engineering scaffolds. Despite their numerous advantages, challenges remain in the fabrication and scalability of CTeMs, requiring sophisticated techniques and meticulous optimization. Future research directions include the development of cost-effective production methods and the exploration of new materials to further enhance the capabilities of CTeMs. This review underscores the transformative potential of CTeMs across various applications and highlights the need for continued innovation to fully realize their benefits.
复合径迹蚀刻膜(CTeMs)作为一类多功能且高性能的材料应运而生,它将传统径迹蚀刻膜(TeMs)精确的孔结构与集成纳米材料增强的功能特性相结合。本综述全面概述了CTeMs的合成、功能化及应用。通过掺入金属纳米颗粒和导电纳米结构等功能相,CTeMs在各个领域展现出了更优的性能。在环境修复方面,CTeMs能有效捕获和分解污染物,兼具分离和解毒功能。在传感器技术领域,它们有潜力提供高灵敏度和选择性,这对于医疗和环境应用中的精确检测至关重要。在能量存储方面,CTeMs在增强离子传输、柔韧性和机械稳定性方面可能具有前景,有助于解决电池和超级电容器性能方面的关键问题。生物医学应用可能会受益于CTeMs的多功能性,有望支持先进的药物递送系统和组织工程支架。尽管CTeMs具有诸多优势,但在其制造和可扩展性方面仍存在挑战,需要复杂的技术和精心的优化。未来的研究方向包括开发具有成本效益的生产方法以及探索新材料,以进一步提升CTeMs的性能。本综述强调了CTeMs在各种应用中的变革潜力,并突出了持续创新以充分实现其优势的必要性。