Yao B C, Wu Y, Yu C B, He J R, Rao Y J, Gong Y, Fu F, Chen Y F, Li Y R
Key Laboratory of Optical Fiber Sensing and Communications (Education Ministry of China), University of Electronic Science and Technology of China, Chengdu 610054, China.
Center for Information in BioMedicine, University of Electronic Science and Technology of China, Chengdu 611731, China.
Sci Rep. 2016 Mar 24;6:23706. doi: 10.1038/srep23706.
Fluorescent resonance energy transfer (FRET) with naturally exceptional selectivity is a powerful technique and widely used in chemical and biomedical analysis. However, it is still challenging for conventional FRET to perform as a high sensitivity compact sensor. Here we propose a novel 'FRET on Fiber' concept, in which a partially reduced graphene oxide (prGO) film is deposited on a fiber-optic modal interferometer, acting as both the fluorescent quencher for the FRET and the sensitive cladding for optical phase measurement due to refractive index changes in biochemical detection. The target analytes induced fluorescence recovery with good selectivity and optical phase shift with high sensitivity are measured simultaneously. The functionalized prGO film coated on the fiber-optic interferometer shows high sensitivities for the detections of metal ion, dopamine and single-stranded DNA (ssDNA), with detection limits of 1.2 nM, 1.3 μM and 1 pM, respectively. Such a prGO based 'FRET on fiber' configuration, bridging the FRET and the fiber-optic sensing technology, may serve as a platform for the realization of series of integrated 'FRET on Fiber' sensors for on-line environmental, chemical, and biomedical detection, with excellent compactness, high sensitivity, good selectivity and fast response.
具有天然卓越选择性的荧光共振能量转移(FRET)是一种强大的技术,在化学和生物医学分析中广泛应用。然而,传统的FRET要作为一种高灵敏度的紧凑型传感器仍具有挑战性。在此,我们提出一种新颖的“光纤上的FRET”概念,其中部分还原的氧化石墨烯(prGO)薄膜沉积在光纤模式干涉仪上,既作为FRET的荧光猝灭剂,又作为由于生化检测中的折射率变化而用于光学相位测量的灵敏包层。同时测量目标分析物诱导的具有良好选择性的荧光恢复和高灵敏度的光学相移。涂覆在光纤干涉仪上的功能化prGO薄膜对金属离子、多巴胺和单链DNA(ssDNA)的检测显示出高灵敏度,检测限分别为1.2 nM、1.3 μM和1 pM。这种基于prGO的“光纤上的FRET”配置,将FRET与光纤传感技术相结合,可作为实现一系列用于在线环境、化学和生物医学检测的集成“光纤上的FRET”传感器的平台,具有出色的紧凑性、高灵敏度、良好的选择性和快速响应。