Harnessing Octadecyl Trimethylammonium Bromide Stabilized Gold Nanorods as a Sensitive Visual Detection Platform: Detection of p-Aminophenol at nM Levels as a Case

溴化物 纳米棒 化学 检出限 光化学 核化学 无机化学 色谱法 纳米技术 材料科学
作者
Xin Cao,Zhiyang Zhang,Jiadong Chen,Ji Qi,Yanzhou Wu,Zhenyu Liu,Yan Chen,Xiaobo Xie,Shuang Su,Chunlei Xia,Lingxin Chen,Xiaoyan Wang
出处
期刊:Langmuir [American Chemical Society]
标识
DOI:10.1021/acs.langmuir.5c00150
摘要

Gold nanorods (AuNRs), as versatile sensing materials, have wide analytical applications due to their unique optical properties. Cetyltrimethylammonium bromide (C16TAB), a conventional reagent in AuNR synthesis, also often acts as a stabilizer of AuNRs in applications. However, C16TAB-stabilized AuNRs undergo severe spontaneous aggregation and etching under extreme pH conditions, greatly limiting their optical sensing applications. Herein, we accidentally discovered that octadecyl trimethylammonium bromide (C18TAB), a rarely used surfactant for AuNRs, has a substantially higher stabilizing ability than C16TAB in preventing spontaneous aggregation and etching of AuNRs, which enables C18TAB-stabilized AuNRs as a superior sensing platform, demonstrating a 100-fold higher sensitivity than C16TAB-stabilized AuNRs for detection of model analytes. The excellent stability of C18TAB-stabilized AuNRs can be attributed to the higher surfactant coverage density on the gold surface, evidenced by the red-shifted longitudinal band (5 nm), which is tuned by the metal surface refraction index. The experimental results show that C18TAB-stabilized AuNRs can keep monodispersed and unchanged optical properties at very acidic and alkaline conditions with a low concentration of surfactant (0.05 mM). Moreover, the C18TAB-stabilized AuNRs can prevent spontaneous etching in the acidic sensing system and maintain their unchanged plasmon band, therefore decreasing the intensity of the noise signal. Benefiting from these findings, we established a reliable and ultrasensitive C18TAB-stabilized AuNR sensing platform and achieved the ultrasensitive detection of the model biomarker p-aminophenol (pAP), with a visual detection limit of 8 nM. This sensitivity represents at least a 100-fold improvement over the existing method using C16TAB-stabilized AuNRs. Moreover, C18TAB-stabilized AuNRs were successfully applied to detect pAP in urine samples with satisfactory recovery rates of 99.84–114.91%, further validating its reliability in practical applications. In summary, C18TAB-stabilized AuNRs provide a powerful tool for trace-level visual detection in chemo- and biosensing.
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