Lithography-free fabrication of scalable 3D nanopillars as ultrasensitive SERS substrates AITranslate
Abstract AITranslate
Highlights • Cost-effective and large-area fabrication of ag nanopillar based substrates. • Ag pillars exhibit uniform plasmonic properties and a high density of hot-spots. • Plasmonic substrates with SERS enhancement factor of 6 × 106. • SERS detection limit at 10−18 M concentration by stationary Raman spectrometer. • SERS detection limit at 10−15 M concentration by handheld Raman spectrometer. Surface-enhanced Raman spectroscopy (SERS) detection of analyte molecules at ultra-low concentrations requires highly-efficient plasmonic nanostructures enabling a high hot-spot density. However, a facile and cost-effective strategy toward large-area fabrication of efficient nanostructures with significant electromagnetic field enhancement remains a great challenge. Further, SERS faces reliability issues with the molecular fingerprint at ultra-low concentrations. This work shows a one-step rapid fabrication technique utilizing glancing angle deposition for growing 3D nanopillars of Ag or Au, which is facile, scalable and cost-effective. The 3D nanopillar substrates can reliably detect analyte molecules with concentrations as low as 10-18 M with a high signal-to-noise ratio molecular fingerprint proven for Cresyl violet, p-aminothiophenol and Rhodamine 6G. The ultra-high enhancement is realized in conjunction with the formation of a high hot-spot density due to localized surface plasmons and surface plasmons at metal/air interface. A portable handheld Raman spectrometer is used to evaluate the potential application of the nanopillars for on-site diagnostics. It avoids the need for sophisticated tabletop instruments yet provides high-precision molecular specificity outside specialized laboratories. The 3D nanopillar substrates show excellent molecular detection limits at 10−15 M concentrations when tested with a handheld Raman spectrometer. The uniqueness of the 3D nanopillar features with the formation of a high density of hot-spots and one-step nanofabrication methods provide a platform to unravel on-site diagnostics with cost-effective approaches. Graphical abstract Download : Download high-res image (293KB) Download : Download full-size image
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DOI:https://doi.org/10.1016/j.apmt.2023.101763
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Highlights • Cost-effective and large-area fabrication of ag nanopillar based substrates. • Ag pillars exhibit uniform plasmonic properties and a high density of hot-spots. • Plasmonic substrates with SERS enhancement factor of 6 × 106. • SERS detection limit at 10−18 M concentration by stationary Raman spectrometer. • SERS detection limit at 10−15 M concentration by handheld Raman spectrometer. Surface-enhanced Raman spectroscopy (SERS) detection of analyte molecules at ultra-low concentrations requires highly-efficient plasmonic nanostructures enabling a high hot-spot density. However, a facile and cost-effective strategy toward large-area fabrication of efficient nanostructures with significant electromagnetic field enhancement remains a great challenge. Further, SERS faces reliability issues with the molecular fingerprint at ultra-low concentrations. This work shows a one-step rapid fabrication technique utilizing glancing angle deposition for growing 3D nanopillars of Ag or Au, which is facile, scalable and cost-effective. The 3D nanopillar substrates can reliably detect analyte molecules with concentrations as low as 10-18 M with a high signal-to-noise ratio molecular fingerprint proven for Cresyl violet, p-aminothiophenol and Rhodamine 6G. The ultra-high enhancement is realized in conjunction with the formation of a high hot-spot density due to localized surface plasmons and surface plasmons at metal/air interface. A portable handheld Raman spectrometer is used to evaluate the potential application of the nanopillars for on-site diagnostics. It avoids the need for sophisticated tabletop instruments yet provides high-precision molecular specificity outside specialized laboratories. The 3D nanopillar substrates show excellent molecular detection limits at 10−15 M concentrations when tested with a handheld Raman spectrometer. The uniqueness of the 3D nanopillar features with the formation of a high density of hot-spots and one-step nanofabrication methods provide a platform to unravel on-site diagnostics with cost-effective approaches. Graphical abstract Download : Download high-res image (293KB) Download : Download full-size image
quote
| GB/T 7714-2015 | [1] Anisha Chirumamilla, IoanaMalina Moise, Ziru Cai, et al. Applied Materials Today, 2023(31). DOI:10.1016/j.apmt.2023.101763. |
| MLA | [1] Anisha Chirumamilla, et al., Applied Materials Today, no. 31, 2023, https://doi.org/10.1016/j.apmt.2023.101763. |
| APA | [1] Anisha Chirumamilla, IoanaMalina Moise, Ziru Cai, Fei Ding, Karina B. Jensen, Deyong Wang, Peter K. Kristensen, Lars R. Jensen, Peter Fojan, Vladimir Popok, Manohar Chirumamilla, & Kjeld Pedersen. (2023). Applied Materials Today(31). https://doi.org/10.1016/j.apmt.2023.101763 |
| IEEE | [1] Anisha Chirumamilla, IoanaMalina Moise, Ziru Cai, Fei Ding, Karina B. Jensen, Deyong Wang, Peter K. Kristensen, Lars R. Jensen, Peter Fojan, Vladimir Popok, Manohar Chirumamilla, and Kjeld Pedersen, Applied Materials Today, no. 31, 2023, doi: 10.1016/j.apmt.2023.101763. keywords: {Onestep nanofabrication;3D nanopillars;Largearea plasmonic substrates;Gap plasmon resonator;Surfaceenhanced Raman spectroscopy} |
