Energy-Level Rich Nanorings Hybridizing Ag, AU and Agcl as High-Performance Sers Substrate for Numerous Molecules

26 Pages Posted: 31 Oct 2024

See all articles by Rongjing Hu

Rongjing Hu

Fuzhou University

Shilan Fu

Fujian Normal University

Yongcong Zhou

Fuzhou University

Zhenyu Lin

Fuzhou University

Fengfu Fu

Fuzhou University

Yongqiang Dong

Fuzhou University

Abstract

The current surface-enhanced Raman scattering (SERS) substrates typically feature a single energy level, posing challenges in coordinating electromagnetic enhancement (EM) and chemical enhancement (CM), thereby limiting the sensitive detection of numerous crucial target molecules. In this study, novel aggregated nanorings (a-NRs) hybridizing Ag, Au and AgCl are constructed as SERS substrates. On one hand, the obtained a-NRs exhibit robust localized surface plasmon resonance absorption, whose wavelength can be tuned to match three commonly used laser wavelengths (532, 633 and 785 nm) to gain strong EM effect. On the other hand, these materials possess the Fermi levels of Au nanoparticles and Au/Ag alloy, in addition to the valence band and con-duction band of AgCl. The abundant energy levels of the obtained a-NRs facilitate increased charge transfer opportunities for molecules, leading to a strong CM effect. Therefore, the obtained a-NRs show ultra-high SERS sensitivity towards numerous molecules. Moreover, the unique chemical composition makes the obtained a-NRs have good long-term stability in terms of SERS activity. Besides providing high-performance SERS substrates, the valuable experience for coordinating EM and CM to construct highly active SERS substrate demonstrated in this work are expected to significantly advance the application of SERS.

Keywords: sers, electromagnetic enhancement, chemical enhancement, gold, silver, silver chloride

Suggested Citation

Hu, Rongjing and Fu, Shilan and Zhou, Yongcong and Lin, Zhenyu and Fu, Fengfu and Dong, Yongqiang, Energy-Level Rich Nanorings Hybridizing Ag, AU and Agcl as High-Performance Sers Substrate for Numerous Molecules. Available at SSRN: https://ssrn.com/abstract=5005553 or http://dx.doi.org/10.2139/ssrn.5005553

Rongjing Hu

Fuzhou University ( email )

fuzhou, 350000
China

Shilan Fu

Fujian Normal University ( email )

Fuzhou, 350007
China

Yongcong Zhou

Fuzhou University ( email )

fuzhou, 350000
China

Zhenyu Lin

Fuzhou University ( email )

fuzhou, 350000
China

Fengfu Fu

Fuzhou University ( email )

Yongqiang Dong (Contact Author)

Fuzhou University ( email )

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