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金纳米板作为坚固、可回收的 SERS 基底用于超灵敏化学传感。

Au nanoplates as robust, recyclable SERS substrates for ultrasensitive chemical sensing.

机构信息

Department of Materials Science and Engineering, National Chiao Tung University, Hsinchu 30010, Taiwan, Republic of China.

Department of Materials Science and Engineering, National Chiao Tung University, Hsinchu 30010, Taiwan, Republic of China.

出版信息

J Colloid Interface Sci. 2014 Mar 15;418:87-94. doi: 10.1016/j.jcis.2013.11.082. Epub 2013 Dec 9.

Abstract

With the structural advantages of being sharp and straight, Au nanoplates may work as a promising surface-enhanced Raman scattering (SERS) platform for detection of Raman-sensitive analytes. However, the utilization of Au nanoplates as realistic SERS substrates is still not widely investigated, especially in the practical detection of environmentally persistent pollutants. This work delivers the first successful demonstration of using Au nanoplate platform in practical SERS sensing toward a typical polycyclic aromatic hydrocarbons pollutant of pyrene. The samples were prepared using an environmentally benign seed-mediated growth approach without the post-purification treatment. It was found that Au nanoplates exhibited significantly enhanced SERS activities (enhancement factor=7.30×10(7)) and achieved an extremely low detection limit (5×10(-10) M) toward pyrene molecules. Furthermore, the SERS activity of Au nanoplates can be fully recovered after repeatedly used and recycled in pyrene detection. These results manifest that the present Au nanoplates can serve as robust, recyclable SERS substrates that allow rapid detection of trace levels of analytes with a high degree of sensitivity and stability. The findings from this work may facilitate the use of Au nanoplate SERS substrates in more realistic applications such as biomolecule sensing and environmental monitoring.

摘要

具有锋利和笔直结构优势的金纳米板可用作表面增强拉曼散射(SERS)平台,用于检测对拉曼敏感的分析物。然而,金纳米板作为实际 SERS 基底的应用仍未得到广泛研究,特别是在环境持久性污染物的实际检测中。本工作首次成功地将金纳米板平台用于实际 SERS 传感,以检测典型的多环芳烃污染物芘。样品采用环境友好的种子介导生长方法制备,无需后纯化处理。结果发现,金纳米板表现出显著增强的 SERS 活性(增强因子=7.30×10(7)),对芘分子的检测限达到了极低的水平(5×10(-10) M)。此外,金纳米板在用于芘检测后可重复使用和回收,其 SERS 活性可完全恢复。这些结果表明,目前的金纳米板可用作坚固、可回收的 SERS 基底,允许快速检测痕量水平的分析物,具有高度的灵敏度和稳定性。本工作的结果可能会促进金纳米板 SERS 基底在更实际的应用中的使用,例如生物分子传感和环境监测。

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