首页|纳米氧化锌功能化的SPR传感器及其对甲醛气体的检测

纳米氧化锌功能化的SPR传感器及其对甲醛气体的检测

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基于表面等离激元共振(Surface Plasmon Resonance,SPR)条件(共振波长、共振角等)对表面折射率极度敏感的特性而发展的SPR折射率(Refractive Index,RI)传感器被广泛地用于物理、化学、生物医学等领域.但是,传感的对象主要局限在溶液体系,以气体为传感对象的工作却比较少.引起这种局限性的原因包括:(1)气体的浓度等参数的变化对传感器表面折射率的影响小,急需灵敏度更高的传感芯片;(2)除了高性能的芯片以外,气体传感还需要稳定结合一套气体流通装置;(3)对气体的特异性检测还要求对传感芯片的表面进行功能性修饰.为了实现基于SPR对甲醛气体的稳定、高灵敏的特异性传感,我们设计了一种以氧化锌纳米颗粒为功能性识别层的SPR折射率光流控传感系统.该系统由自制的周期性表面等离激元阵列来提供超灵敏的SPR传感,在其表面修饰氧化锌纳米颗粒以后,再进一步与气体传输装置紧密封接.原位、实时的甲醛气体传感结果表明,该系统可以并首次实现了通过SPR光谱峰位置的移动对甲醛气体的传感检测;氧化锌纳米颗粒作为功能性识别层,不仅有效地改善了传感器对甲醛气体的特异性检测,还将传感的灵敏度提高了3倍.
SPR sensor functionalized with zinc oxide and its detection of gaseous formaldehyde
The surface plasmon resonance(SPR)refractive index(RI)sensor,developed on the basis of the extreme sensitivity of the surface plasmon resonance condition(resonance wavelength,resonance angle,etc.)to the surface RI,has been frequently used in physics,chemistry,biomedicine,and other fields.SPR characteristics,such as resonance wavelength and resonance angle,depend highly on the surface RI.However,the object of sensing is primarily confined to the solution system.This restriction is due to several factors,including:(1)the change in gas concentration and other parameters has a negligible impact on the RI of the sensor surface,thus demanding a sensor chip with higher sensitivity;(2)the transmission of the sensing gas requires a further combination of the sensor chip with a stable flow device;(3)specific detection of gaseous molecules also requires specific modification to the surface of the sensor chip.In the present work,we report a design of an SPR RI optofluidic sensing system of gaseous formaldehyde,in which zinc oxide nanoparticles operate as the functional recognition layer.Following the surface modification with zinc oxide nanoparticles,the ultra-sensitive,self-made SPR refractive sensor chip is tightly sealed with a gas flow device for in situ,real-time gas transmission and sensing.The findings demonstrate that the detection system can precisely measure the concentration of formaldehyde gas by shifting the positions of the SPR spectral peaks.Furthermore,zinc oxide nanoparticles effectively enhanced the sensor's ability to detect formaldehyde gas and tripled its sensitivity.This portable real-time and in situ gas sensor will play an essential role in the sensing and detection of more gaseous molecules.

surface plasmon resonanceSPR refractive index sensorzinc oxide nanoparticlesdetection of formaldehyde gas

曾宁、杜圆圆、魏月月、刘博文

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兰州大学化学化工学院,兰州 730000

表面等离激元共振 SPR折射率传感器 氧化锌纳米颗粒 甲醛气体的检测

国家自然科学基金国家自然科学基金国家自然科学基金

2180406122074056T2222001

2023

中国科学(物理学 力学 天文学)
中国科学院

中国科学(物理学 力学 天文学)

CSTPCDCSCD北大核心
影响因子:0.644
ISSN:1674-7275
年,卷(期):2023.53(11)
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