刘冬虎, 胡亚东, 刘娟. 基于纳米涂层的微纳光纤传感器对镉离子的特异性超灵敏检测[J]. 南昌航空大学学报(自然科学版), 2025, 39(2): 56-64. DOI: 10.3969/j.issn.2096-8566.2025.02.008
引用本文: 刘冬虎, 胡亚东, 刘娟. 基于纳米涂层的微纳光纤传感器对镉离子的特异性超灵敏检测[J]. 南昌航空大学学报(自然科学版), 2025, 39(2): 56-64. DOI: 10.3969/j.issn.2096-8566.2025.02.008
Donghu LIU, Yadong HU, Juan LIU. Nanocoating-Based Micro/Nano Optical Fiber Sensor for Ultrasensitive and Specific Detection of Cadmium Ions[J]. Journal of nanchang hangkong university(Natural science edition), 2025, 39(2): 56-64. DOI: 10.3969/j.issn.2096-8566.2025.02.008
Citation: Donghu LIU, Yadong HU, Juan LIU. Nanocoating-Based Micro/Nano Optical Fiber Sensor for Ultrasensitive and Specific Detection of Cadmium Ions[J]. Journal of nanchang hangkong university(Natural science edition), 2025, 39(2): 56-64. DOI: 10.3969/j.issn.2096-8566.2025.02.008

基于纳米涂层的微纳光纤传感器对镉离子的特异性超灵敏检测

Nanocoating-Based Micro/Nano Optical Fiber Sensor for Ultrasensitive and Specific Detection of Cadmium Ions

  • 摘要: 为实现水溶液中镉离子(Cd2+)的实时痕量检测,提出一种基于 N-异丙基丙烯酰胺-烯丙基硫脲(PNA)聚合物纳米涂层的微纳光纤传感器。该传感器采用单模−拉锥四芯−单模(STFS)结构,其表面修饰的PNA纳米涂层能够与待测溶液中的Cd2+形成交联结构(—S—Cd2+—S—),从而引发微纳光纤表面薄膜折射率变化。通过监测透射光谱中的干涉谷(dip)位移,实现了对Cd2+的高灵敏度检测。实验结果表明,该传感器在Cd2+浓度范围100~1000 nmol/L内呈现良好的线性响应,检测限低至2.20 μg/L,显著低于世界卫生组织(WHO)规定的水质排放标准。选择性实验进一步证实,该传感器对 Cd2+的响应信号远高于Cr3+和Ni2+等干扰离子,展现出优异的特异性识别能力。本研究为水体中Cd2+的快速、高灵敏检测提供了一种新型技术方案,有望在环境监测和水质安全领域得到广泛应用。

     

    Abstract: To enable real-time trace detection of cadmium ions (Cd2+) in aqueous solutions, this study proposes a micro/nano optical fiber sensor based on a polymer nanocoating of N-isopropylacrylamide-allylthiourea (PNA). The sensor employs a single-mode tapered four-core single-mode (STFS) structure, on which a —S—Cd2+—S— crosslinked structure are costructed between the PNA nanocoating and with Cd2+ in the test solution, leading to refractive index changes in the thin film on the micro/nano fiber surface. By monitoring the shift of interference dips in the transmission spectrum, highly sensitive detection of Cd2+ is achieved. Excellent linear response within a Cd2+ concentration range of 100~1000 nmol/L is achieved, with a detection limit as low as 2.20 μg/L, significantly below the water quality discharge standard stipulated by the World Health Organization (WHO). Selectivity experiments further confirm that the sensor’s response signal to Cd2+ is markedly higher than those to interfering ions such as Cr3+ and Ni2+, demonstrating superior specific recognition capability. This study provides a novel technical solution for rapid and highly sensitive detection of Cd2+ in water bodies, holding promise for applications in environmental monitoring and water quality safety.

     

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