Babar Zaheer Ud Din, Della Ventura Bartolomeo, Velotta Raffaele, Iannotti Vincenzo
Scuola Superiore Meridionale (SSM), University of Naples Federico II Largo S. Marcellino, 10 80138 Italy.
Department of Physics "E. Pancini", University of Naples Federico II Via Cintia 26 80126 Naples Italy
RSC Adv. 2022 Jul 6;12(30):19590-19610. doi: 10.1039/d2ra02985e. eCollection 2022 Jun 29.
Two-dimensional materials have unique properties and their better functionality has created new paradigms in the field of sensing. Over the past decade, a new family of 2D materials known as MXenes has emerged as a promising material for numerous applications, including biosensing. Their metallic conductivity, rich surface chemistry, hydrophilicity, good biocompatibility, and high anchoring capacity for biomaterials make them an attractive candidate to detect a variety of analytes. Despite such notable properties, there are certain limitations associated with them. This review aims to present a detailed survey of MXene's synthesis; in particular, their superiority in the field of biosensing as compared to other 2D materials is addressed. Their low oxidative stability is still an open challenge, and recent investigations on MXene's oxidation are summarized. The hexagonal stacking network of MXenes acts as a distinctive matrix to load nanoparticles, and the embedded nanoparticles can bind an excess number of biomolecules (, antibodies) thereby improving biosensor performance. We will also discuss the synthesis and corresponding performance of MXenes nanocomposites with noble metal nanoparticles and magnetic nanoparticles. Furthermore, Nb and TiC-based MXenes, and TiC-MXene sandwich immunoassays are also reviewed in view of their importance. Different aspects and challenges associated with MXenes (from their synthesis to final applications) and the future perspectives described give new directions to fabricate novel biosensors.
二维材料具有独特的性质,其优异的功能在传感领域开创了新的范例。在过去十年中,一类名为MXenes的新型二维材料已成为包括生物传感在内的众多应用的有前途的材料。它们的金属导电性、丰富的表面化学性质、亲水性、良好的生物相容性以及对生物材料的高锚定能力,使其成为检测各种分析物的有吸引力的候选材料。尽管具有这些显著特性,但它们也存在一定的局限性。本综述旨在对MXene的合成进行详细概述;特别是,将探讨其在生物传感领域相对于其他二维材料的优势。其低氧化稳定性仍然是一个悬而未决的挑战,并总结了近期关于MXene氧化的研究。MXenes的六边形堆叠网络作为负载纳米颗粒的独特基质,嵌入的纳米颗粒可以结合过量的生物分子(如抗体),从而提高生物传感器的性能。我们还将讨论MXenes与贵金属纳米颗粒和磁性纳米颗粒的纳米复合材料的合成及相应性能。此外,鉴于其重要性,还将对基于Nb和TiC的MXenes以及TiC-MXene夹心免疫分析进行综述。与MXenes相关联的不同方面和挑战(从其合成到最终应用)以及所描述的未来前景为制造新型生物传感器提供了新的方向。