Department of Chemistry, Sunandan Divatia School of Science, SVKM's NMIMS (Deemed to be) University, V.L. Mehta Road, Vile Parle (West), Mumbai 400056, India.
Hanse-Wissenschaftskolleg-Institute for Advanced Study (HWK), Lehmkuhlenbusch 4, 27753 Delmenhorst, Germany.
Biosensors (Basel). 2024 Feb 21;14(3):116. doi: 10.3390/bios14030116.
Electrospun nanofibers possess a large surface area and a three-dimensional porous network that makes them a perfect material for embedding functional nanoparticles for diverse applications. Herein, we report the trends in embedding upconversion nanoparticles (UCNPs) in polymeric nanofibers for making an advanced miniaturized (bio)analytical device. UCNPs have the benefits of several optical properties, like near-infrared excitation, anti-Stokes emission over a wide range from UV to NIR, narrow emission bands, an extended lifespan, and photostability. The luminescence of UCNPs can be regulated using different lanthanide elements and can be used for sensing and tracking physical processes in biological systems. We foresee that a UCNP-based nanofiber sensing platform will open opportunities in developing cost-effective, miniaturized, portable and user-friendly point-of-care sensing device for monitoring (bio)analytical processes. Major challenges in developing microfluidic (bio)analytical systems based on UCNPs@nanofibers have been reviewed and presented.
静电纺纳米纤维具有较大的比表面积和三维多孔网络,使其成为嵌入功能性纳米粒子以实现各种应用的理想材料。在此,我们报告了在聚合物纳米纤维中嵌入上转换纳米粒子 (UCNP) 以制造先进的微型化 (生物) 分析器件的趋势。UCNP 具有多种光学特性,如近红外激发、在从 UV 到 NIR 的宽范围内反斯托克斯发射、窄发射带、延长的寿命和光稳定性。UCNP 的发光可以通过不同的镧系元素进行调节,并可用于感测和跟踪生物系统中的物理过程。我们预计,基于 UCNP 的纳米纤维传感平台将为开发具有成本效益、微型化、便携式和用户友好的即时检测传感设备提供机会,用于监测 (生物) 分析过程。本文综述并介绍了基于 UCNP@纳米纤维的微流控 (生物) 分析系统的主要挑战。