Recent Advances in Printing of SERS Substrates

Abstract Detection of trace chemicals, heavy metals, biomolecules, explosives, and threats such as nerve agents and narcotics is a challenging task. The selection criteria for candidate technology include sensitive detection capability with ultra-low limits of detection, unambiguous selectivity, and a portable, field-deployable platform. Surface enhanced Raman spectroscopy (SERS) has emerged as a highly useful and proven method to meet the detection requirements. The usually weak Raman signal due to small cross-sections of most analytes is amplified sufficiently in SERS for implementation in practical systems. This amplification is enabled by sufficiently close metallic nanostructures placed on a backup material, called a SERS substrate. The current bottleneck to widespread practical implementation of SERS is the lack of reliable substrates at reasonable prices, as elaborate schemes are needed to prepare the desired nanofeatures to achieve the SERS enhancement. An ideal SERS substrate must have a high density of hot spots over the active detection area, a high enhancement factor uniformly across the active area, and reproducible results with fabrication amenable to large-scale manufacturing that can result in low cost. Direct write printing of metallic nanoparticles on paper and other flexible substrates as well as rigid substrates such as silicon and glass has been emerging as a viable technique to meet the above requirements. This article presents a detailed review of printed SERS substrates and their applications, along with the operating principles.

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Publication Details

Journal
ACS Applied Nano Materials
Published
2026-10-05
DOI
https://doi.org/10.1021/acsanm.6c03305
Primary Topic
Gold and Silver Nanoparticles Synthesis and Applications
Type
article
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article

Recent Advances in Printing of SERS Substrates

Meyya Meyyappan, Siva Kumar Krishnan, Rafael Villamil Carreón
ACS Applied Nano Materials
Gold and Silver Nanoparticles Synthesis and Applications
article

Recent Advances in Printing of SERS Substrates

Meyya Meyyappan, Siva Kumar Krishnan, Rafael Villamil Carreón
article en

Abstract

Abstract Detection of trace chemicals, heavy metals, biomolecules, explosives, and threats such as nerve agents and narcotics is a challenging task. The selection criteria for candidate technology include sensitive detection capability with ultra-low limits of detection, unambiguous selectivity, and a portable, field-deployable platform. Surface enhanced Raman spectroscopy (SERS) has emerged as a highly useful and proven method to meet the detection requirements. The usually weak Raman signal due to small cross-sections of most analytes is amplified sufficiently in SERS for implementation in practical systems. This amplification is enabled by sufficiently close metallic nanostructures placed on a backup material, called a SERS substrate. The current bottleneck to widespread practical implementation of SERS is the lack of reliable substrates at reasonable prices, as elaborate schemes are needed to prepare the desired nanofeatures to achieve the SERS enhancement. An ideal SERS substrate must have a high density of hot spots over the active detection area, a high enhancement factor uniformly across the active area, and reproducible results with fabrication amenable to large-scale manufacturing that can result in low cost. Direct write printing of metallic nanoparticles on paper and other flexible substrates as well as rigid substrates such as silicon and glass has been emerging as a viable technique to meet the above requirements. This article presents a detailed review of printed SERS substrates and their applications, along with the operating principles.

ACS Applied Nano Materials
Indian Institute of Technology Guwahati (IN), Benemérita Universidad Autónoma de Puebla (MX)
Openalex Percentile: Top 31%
Gold and Silver Nanoparticles Synthesis and Applications
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Recent Advances in Printing of SERS Substrates — Meyya Meyyappan, Siva Kumar Krishnan, et al. · ACS Applied Nano Materials (2026) | TGRS Research Map | TGRS