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光纤光微流激光血红蛋白传感器

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提出一种光纤光微流激光(FOFL)生化传感器,基于罗丹明螺环衍生物的"开-闭"环机制测量血红蛋白(Hb)的浓度,将薄壁空心光纤(HOF)作为光学微腔,利用一种非荧光螺环酰肼,即罗丹明B酰肼(RBH)来实现荧光响应。Cu2+可诱导RBH内部螺环打开,触发荧光"关-开"响应。由实验结果可知,具有类酶催化特性的血红蛋白能加速RBH的开环反应,在一定条件下增加荧光产物的浓度。以开环荧光产物作为增益介质,FOFL可放大由不同血红蛋白浓度引起的荧光产物浓度差异,以此建立起FOFL积分强度与血红蛋白浓度的关系,构建用于血红蛋白检测的FOFL传感器。在特定的实验条件下,该传感器的检测限约为0。56 pmol/L,动态范围达到4个数量级。
Optical Fiber Optofluidic Laser Hemoglobin Sensor
Objective Hemoglobin,an important indicator in routine blood tests,can reflect the ability of the body to produce red blood cells and assist in the diagnosis of a number of diseases,such as anemia,heart disease,and leukemia.Therefore,determination of hemoglobin content in human serum is an important element in clinical testing.Traditional hemoglobin detection techniques,such as colorimetric,electrochemical,fluorescence,and spectrophotometric methods,are typically associated with time-consuming,complex and cumbersome procedures;sample volume requirements;possibly high limit of detection;and possibly narrow dynamic ranges that limit further development of hemoglobin sensors to a certain extent.In this study,we report a novel optical fiber optofluidic laser hemoglobin sensor that exploits the"open‒closed"ring mechanism of rhodamine spiro-ring derivatives for hemoglobin concentration measurement.This sensor achieves a lower limit of detection and wider dynamic range,while offering the advantages of simple operation and low sample consumption.We hope that the developed method will contribute to the design of new hemoglobin sensors with excellent performance and provide ideas for the design of optical fiber optofluidic laser biochemical sensors based on chromogenic reactions.Methods In this study,the"open‒closed"ring mechanism of rhodamine B hydrazide induced by copper ions and the enzyme-like catalytic properties of hemoglobin were exploited.First,thin-walled hollow optical fibers with micron-sized wall thicknesses were prepared as optical microcavities for optical fiber optofluidic lasers using the corrosive effect of hydrofluoric acid.Subsequently,the ring-opening fluorescence product of rhodamine B hydrazide after redox hydrolysis was used as the gain medium that was passed into the prepared thin-walled hollow optical fiber.A radially emitted optical fiber optofluidic laser was achieved through the pump excitation of a pulsed laser.Next,the effects of the reaction time,concentration of rhodamine B hydrazide,and concentration of copper ions in the reaction solution on the optical fiber optofluidic laser output results were investigated and analyzed.Subsequently,the lasing threshold of the constructed optical fiber optofluidic laser was determined.Then,hemoglobin concentrations were measured under the optimized experimental conditions,along with fluorescence experiments for comparison with it.Results and Discussions The spectra of the collected whispering-gallery mode optical fiber optofluidic laser has sharp laser peaks in the wavelength range of 583‒592 nm,with a full width at half maximum as low as 3.31 nm(Fig.2).At 230 min,the optical fiber optofluidic laser appears,and the laser intensity increases rapidly in the time range of 230‒325 min and subsequently reaches stability(Fig.2).The results of the rhodamine B hydrazide concentration measurements show that rhodamine B hydrazide can increase the concentration of the fluorescent products of the ring-opening reaction and enhance the output laser intensity within a certain concentration range(Fig.3).The results of the copper ion concentration measurements show that copper ions can increase the concentration of the fluorescent products of the ring-opening reaction and enhance the output laser intensity within a certain concentration range(Fig.4).The lasing threshold test results show that the lasing threshold of the designed optical fiber optofluidic laser is approximately 9.74 μJ.When the pump energy exceeds the lasing threshold,the laser intensity increases linearly with the pump energy(Fig.5).The performance test results of the hemoglobin sensor demonstrate that the designed sensor has a dynamic range of four orders of magnitude and a limit of detection of approximately 0.56 pmol/L(Fig.6).Conclusions In this study,an optical fiber optofluidic laser biochemical sensor for hemoglobin detection is proposed and demonstrated using the"open‒closed"ring mechanism of rhodamine B hydrazide,a rhodamine spiro-ring derivative.Using the prepared thin-walled hollow optical fiber as a whispering-gallery-mode optical microcavity,the highly fluorescent product rhodamine B,produced by the ring-opening reaction of rhodamine B hydrazide induced by copper ions,is used as a gain medium to achieve radially emitting optical fiber optofluidic laser.The enzyme-like catalytic properties of hemoglobin facilitate the ring-opening reaction of rhodamine B hydrazide that has been exploited in the design of hemoglobin sensors.The effects of the reaction time,concentration of rhodamine B hydrazide,and concentration of copper ions in the mixed solution on the laser output results are investigated,and the threshold of the optical fiber optofluidic laser is tested.By optimizing the experimental conditions through result analysis,the designed hemoglobin sensor offers a dynamic range of four orders of magnitude and a limit of detection on the pmol/L scale.

optical fiber sensorsoptofluidic laserrhodamine spiro-ring derivativesbiochemical sensinghemoglobin detection

张红蕊、张亚男、李莉柯、赵勇

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东北大学信息科学与工程学院,辽宁 沈阳 110819

河北省微纳精密光学传感与检测技术重点实验室,河北 秦皇岛 066004

东北大学流程工业综合自动化国家重点实验室,辽宁 沈阳 110819

光纤传感器 光微流激光 罗丹明螺环衍生物 生化传感 血红蛋白检测

国家自然科学基金国家自然科学基金辽宁省兴辽英才计划青年拔尖人才项目流程工业综合自动化国家重点实验室项目

62222504U22A2021XLYC22031252018ZCX31

2024

光学学报
中国光学学会 中国科学院上海光学精密机械研究所

光学学报

CSTPCD北大核心
影响因子:1.931
ISSN:0253-2239
年,卷(期):2024.44(11)
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