光散射学报, 2023, 35 (3): 254, 网络出版: 2023-11-17  

高灵敏光纤SERS基底的性能研究

Study on the Performance of High Sensitivity Fiber SERS Substrate
作者单位
燕山大学理学院, 河北 秦皇岛 066004
摘要
由于光纤长度可控以及其独特的光学性能使得光纤SERS基底的检测灵活简单, 在本研究中, 采用油水分离的实验方法在光纤端面上修饰了银纳米颗粒, 证明了该方法可以制备光纤SERS基底并有效增强拉曼信号。我们将结晶紫溶液作为分析物对制备的SERS光纤基底进行了表征, 并对光纤SERS基底的均匀性、灵敏度和稳定性三个方面进行了研究。在实际应用中, 使用光纤基底对罗丹明6G和农药中间体合成中广泛使用的4-氨基苯硫酚进行了检测。这些实验结果证明了自组装法为光纤SERS基底的制备提供了可行思路。
Abstract
Due to the controllable length of the fiber and its unique optical performance, the detection of the fiber SERS substrate is flexible and simple. In this study, silver nanoparticles were modified on the fiber end face using an oil-water separation experimental method, proving that this method can prepare the fiber SERS substrate and effectively enhance Raman signals. We used Crystal violet solution as the analyte to characterize the SERS fiber matrix, and studied the uniformity, sensitivity and stability of the fiber SERS substrate. In practical application, optical fiber substrate was used to detect 4-aminonenenebb thiophenol, which is widely used in the synthesis of Rhodamine 6G and pesticide intermediates. These experimental results demonstrate that the self-assembly method provides a feasible approach for the preparation of fiber SERS substrates.
参考文献

[1] Mu Y, Islam J, Murray R, et al. Silver nanoparticles - laser induced graphene (Ag NPs - LIG) hybrid electrodes for sensitive electrochemical-surface enhanced Raman spectroscopy (EC-SERS) detection[J]. The Analyst,2023,148(13):3087-3096.

[2] Yang Y Q, Creedon N, O’Riordan A, et al. Surface Enhanced Raman Spectroscopy: Applications in Agriculture and Food Safety[J]. Photonics,2021, 8(12): 24.

[3] 赵琦, 刘翠玲, 孙晓荣, 等 基于SERS法的苹果中农药残留的定性及定量分析 %J 光散射学报[J]. 2016, 28(01): 6-11.(Zhao Q, Liu C L, Sun X R, et al. Qualitative and quantitative analyzing on pesticide residue in apple using SERS[J]. The Journal of Light Scattering, 2016, 28(01): 6-11.

[4] 张凯萍, 李国霞. 基于反向传播神经网络结合便携式拉曼光谱特级初榨橄榄油掺假定量分析 [J].光散射学报, 2023, 35(01): 64-70.(Zhang K P, Li G X. Quantitative analysis of adulteration of extra virgin olive oil based on back propagation neural network and portable Raman spectroscopy[J]. The Journal of Light Scattering, 2023, 35(01): 64-70.

[5] Yang C, Zhang C, Huo Y, et al. Shell-isolated graphene@Cu nanoparticles on graphene@Cu substrates for the application in SERS[J]. Carbon,2016, 98: 526-533.

[6] Kostovski G, Stoddart P R and Mitchell A. The Optical Fiber Tip: An Inherently Light-Coupled Microscopic Platform for Micro- and Nanotechnologies[J]. Advanced Materials,2014, 26(23): 3798-3820.

[7] Mullen K I and Carron K T J A C. Surface-enhanced Raman spectroscopy with abrasively modified fiber optic probes[J]. 1991, 63(19): 2196-2199.

[8] Stokes D L, Vo-Dinh T J S and Chemical A B. Development of an integrated single-fiber SERS sensor[J]. 2000, 69(1-2): 28-36.

[9] Fan Q, Cao J, Liu Y, et al. Investigations of the fabrication and the surface-enhanced Raman scattering detection applications for tapered fiber probes prepared with the laser-induced chemical deposition method[J]. 2013, 52(25): 6163-6169.

[10] Hao Z S, Li N, Cao H J, et al. Modified Ag nanoparticles on the regular array structure to improve the optical properties[J]. Journal of Luminescence,2022, 243: 118684.

[11] Xiao C, Chen Z B, Qin M Z, et al. Composite Sinusoidal Nanograting With Long-Range SERS Effect for Label-Free TNT Detection[J]. Photonic Sensors,2018, 8(3): 278-288.

[12] 郭广生,沈艳婷,吴家伟,等. 基于超低频拉曼光谱的有机磷农药的研究[J]. 光散射学报,2022,34(04):348-354.(Guo G S, Shen Y T, Wu J W, et al. Ultra-low frequency Raman spectroscopy of organophosphorus pesticides[J]. The Journal of Light Scattering, 2022,34(04):348-354.

[13] Meng W, Hu F, Zhang L-Y, et al. SERS and DFT study of crystal violet[J]. Journal of Molecular Structure,2013,1035:326-331.

[14] Hu W Y, Xia L, Hu Y F, et al. Recent progress on three-dimensional substrates for surface-enhanced Raman spectroscopic analysis[J]. Microchemical Journal,2022, 172: 11.

[15] Kang C, Sun Z, Fang X, et al. Molecular trace detection in liquids using refocusing optical feedback by a silver-coated capillary[J]. Nanoscale Advances,2021,3(24):6934-6939.

[16] Zaleski S, Cardinal M F, Chulhai D V, et al. Toward Monitoring Electrochemical Reactions with Dual-Wavelength SERS: Characterization of Rhodamine 6G (R6G) Neutral Radical Species and Covalent Tethering of R6G to Silver Nanoparticles[J]. The Journal of Physical Chemistry C,2016,120(43):24982-24991.

[17] Mandavkar R, Lin S, Pandit S, et al. Hybrid SERS platform by adapting both chemical mechanism and electromagnetic mechanism enhancements: SERS of 4-ATP and CV by the mixture with GQDs on hybrid PdAg NPs[J]. Surfaces and Interfaces,2022,33:102175.

[18] Huang Y-F, Zhu H-P, Liu G-K, et al. When the Signal Is Not from the Original Molecule To Be Detected: Chemical Transformation ofpara-Aminothiophenol on Ag during the SERS Measurement[J]. Journal of the American Chemical Society,2010,132(27):9244-9246.()

杜伟, 魏圣男, 李月, 王明利. 高灵敏光纤SERS基底的性能研究[J]. 光散射学报, 2023, 35(3): 254. DU Wei, WEI Shengnan, LI Yue, WANG Mingli. Study on the Performance of High Sensitivity Fiber SERS Substrate[J]. The Journal of Light Scattering, 2023, 35(3): 254.

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