4.8 Article

Synergistic SERS Enhancement in GaN-Ag Hybrid System toward Label-Free and Multiplexed Detection of Antibiotics in Aqueous Solutions

期刊

ADVANCED SCIENCE
卷 8, 期 19, 页码 -

出版社

WILEY
DOI: 10.1002/advs.202100640

关键词

antibiotics; gallium nitride nanopillars; multiplexing; surface-enhanced Raman spectroscopy; silver nanowires

资金

  1. National Research Foundation of Korea (NRF) - Korea government (MSIT) [NRF-2020R1A2B5B03001603, NRF-2019R1A2C2086240]

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This study presents a hybrid SERS substrate utilizing Ag as plasmonic structures and GaN as charge transfer enhancement centers, which can fabricate a highly sensitive and uniform SERS substrate through conformal printing of Ag nanowires onto GaN nanopillars. It achieves remarkable SERS performance for specific molecules with quantification and multiplexing capabilities demonstrated without surface treatments. This work paves the way for the development of a highly sensitive SERS substrate by constructing complex metal-semiconductor architectures.
Noble metal-based surface-enhanced Raman spectroscopy (SERS) has enabled the simple and efficient detection of trace-amount molecules via significant electromagnetic enhancements at hot spots. However, the small Raman cross-section of various analytes forces the use of a Raman reporter for specific surface functionalization, which is time-consuming and limited to low-molecular-weight analytes. To tackle these issues, a hybrid SERS substrate utilizing Ag as plasmonic structures and GaN as charge transfer enhancement centers is presented. By the conformal printing of Ag nanowires onto GaN nanopillars, a highly sensitive SERS substrate with excellent uniformity can be fabricated. As a result, remarkable SERS performance with a substrate enhancement factor of 1.4 x 10(11) at 10 fM for rhodamine 6G molecules with minimal spot variations can be realized. Furthermore, quantification and multiplexing capabilities without surface treatments are demonstrated by detecting harmful antibiotics in aqueous solutions. This work paves the way for the development of a highly sensitive SERS substrate by constructing complex metal-semiconductor architectures.

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