| Literature DB >> 35448285 |
Caterina Serafinelli1,2,3,4, Alessandro Fantoni1,3, Elisabete C B A Alegria1,2, Manuela Vieira1,3,4.
Abstract
In SERS analysis, the specificity of molecular fingerprints is combined with potential single-molecule sensitivity so that is an attractive tool to detect molecules in trace amounts. Although several substrates have been widely used from early on, there are still some problems such as the difficulties to bind some molecules to the substrate. With the development of nanotechnology, an increasing interest has been focused on plasmonic metal nanoparticles hybridized with (2D) nanomaterials due to their unique properties. More frequently, the excellent properties of the hybrids compounds have been used to improve the drawbacks of the SERS platforms in order to create a system with outstanding properties. In this review, the physics and working principles of SERS will be provided along with the properties of differently shaped metal nanoparticles. After that, an overview on how the hybrid compounds can be engineered to obtain the SERS platform with unique properties will be given.Entities:
Keywords: SERS analysis; hotspots; hybrid materials; plasmonic metal nanoparticles
Mesh:
Substances:
Year: 2022 PMID: 35448285 PMCID: PMC9029226 DOI: 10.3390/bios12040225
Source DB: PubMed Journal: Biosensors (Basel) ISSN: 2079-6374
Figure 1Schematics showing the SERS signal arising from a molecule localized inside a hotspot created in the space between two plasmonic metal nanoparticles.
Performances of the SERS platform based on hybrids of plasmonic metal nanoparticles and graphene or other 2D nanomaterials.
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| Graphene oxide/Ag nanoparticle hybrids (GO/AgNPs) | Acid folic | 9 nM | Not calculated | [ | ||
| Graphene nanosheets/Ag nanoparticle hybrids (Ag/GNs) | 2,4,6-trinitrotoluene (TNT) | 5 × 10−16 M | Not calculated | [ | ||
| Reduced graphene oxide/Au nanoparticle hybrids (RGO/AuNPs) | 2-thiouracil (2-TU) | 1 μM | 5.6 × 105 | 4-aminothiophenol (4-ATP) |
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| AuNP-decorated MoS2 nanosheets (AuNPs@MoS2) | Rhodamine 6G (R6G) | 10−6 M | 8.2 × 105 | Rhodamine 6G (R6G) |
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| AuNP-decorated tungsten disulfide (WS2) nanosheets (Au/WS2) | Myoglobin (Mb) | 10−2 pg mL−1 | 6.78 × 106 | Rhodamine 6G (R6G) |
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Figure 2(a) Electromagnetic (EM) field (bright spot) around a gold nanostars’ (AuNS) spike and (b) EM field around a gold nanorod (AuNR) tip.
Figure 3Au nanorods under the illumination of a laser beam and the resulting SERS signal.
Performances of the SERS platform based on different shaped nanoparticles.
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| Graphene oxide/Au nanorods hybrids (GO-AuNRs) | Crystal violet (CV), | Not calculated | Not calculated | [ | ||
| Silver nanorods/reduced graphene oxide nanosheets hybrids (AgNR/rGO) | Rhodamine 6G (Rh6G) | 0.2 nmol/L–0.004 μmol/L | Not calculated | [ | ||
| Iodine ion | ||||||
| Au/Ag core–shell nanorods and reduced graphene oxide hybrid structure (Au@AgNRs/rGO) | Thiram | 5.12 × 10−3 μM | (5.0 ± 0.2) × 108 | Rhodamine-6G (R6G)) |
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| Reduced graphene oxide/silver nanotriangles hybrid structures (rGO/AgNT) | dopamine (DA) | 1.2 μmol/L | Not calculated | [ | ||
| Ag-nanoplates/graphene hybrids (Ag-NP@GH) | thiram | 40 Nm–600 nM | 4.7 × 108 | Rhodamine 6G (R6G) |
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| Methyl parathion (MP) | ||||||
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| Graphene oxide/Au nanostars hybrid structure (GO/AuNSs) | Crystal violet (CV) | 10−11 M | 1.7 × 105 | Crystal violet (CV) |
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| Popcorn-shaped gold nanoparticles and graphene oxide hybrid structures | Methicillin-resistant Staphylococcus aureus (MRSA) | 10 CFU/mL | 3.8 × 1011 | Rh6G |
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| Graphene oxide/Au nanostars hybrid structure (GO/AuNSs) | Bilirubin | 0.436 μM | 2.43 × ISERS/Ibulk | 4-nitrothiophenol (4-NTP) | ( | [ |
Performances of the SERS platform based on hybrid compounds containing engineered 2D nanomaterials.
| ENGINEERED 2D NANOMATERIAL | ||||||
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| System | Molecule used to calculate LOD | Limit of Detection (LOD) | Enhancement Factor (EF) | Molecule used to calculate EF | Equation used to calculate EF | Reference |
| Ag nanocube-decorated 1T-MoS2 nanosheet composites (1T-MoS2/AgNCs) | Thiram (TRM) | 0.62 Nm–50 Nm | 1.78 × 107 | Rhodamine 6G (R6G) | (ISERS × CRaman)/(IRaman × CSERS) | [ |
| Thiabendazole (TBZ) | ||||||
| Gold nanoparticle-decorated MoS2 nanosheets (n-MoS2@AuNP) | R = Rhodamine B (RhB) | 10−10 M | ∼104 | R = Rhodamine B (RhB) | Peak intensity ratio of the SERSactive | [ |
| Gold nanoparticles decorated boron nitride (BN) nanosheets (Au/BN) | Rhodamine 6G (R6G) | 5.12 × 10−3 μM | (5.0 ± 0.2) × 108 | Rhodamine 6G (R6G) | ( | [ |
Performances of the SERS platform based on hybrid compounds with a three-dimensional structure.
| THREE DIMENSIONAL STRUCTURES | ||||||
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| System | Molecule Used to Calculate LOD | Limit of Detection (LOD) | Enhancement Factor (EF) | Molecule Used to Calculate EF | Equation Used to Calculate EF | Reference |
| Gold nanoparticle-decorated three-dimensional (3D) MoS2 nanospheres ((3D MoS2-NS@Au-NPs) | Melamine | 1 ppb | 7.9 × 107 | 4-mercaptophenol (4-MPH) | ( | [ |
| Hierarchical MoS2-microspheres decorated with “cauliflower-like” AuNP arrays (CF-AuNPs@MoS2-MS) | Rhodamine 6G (R6G) | 10−14–10−15 | Not calculated | [ | ||
| Methylene blue (MB) | ||||||
| Gold nanoparticle-decorated boron nitride (BN) nanosheets (Au/BN) | Rhodamine 6G (R6G) | 5.12 × 10−3 μM | (5.0 ± 0.2) × 108 | Rhodamine 6G (R6G) | ( | [ |
The performances of the SERS platform based on hybrid compounds engineered with nanospacers are listed.
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| System | Molecule Used to Calculate LOD | Limit of Detection (LOD) | Enhancement Factor (EF) | Molecule Used to Calculate EF | Equation Used to Calculate EF | Reference |
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| Graphene sandwiched between two layers of vertically stacked Au NPs (Au NP/graphene/Au NP) | Sudan III | 0.1 nM | 1.6 × 108–2.5 × 108 | Rhodamine B (RhB) | ( | [ |
| Methylene blue | Rhodamine 6G (R6G) | |||||
| Graphene nanosheet sandwiched between a layer of AuNPs and AgNPs (AgNPs/graphene@AuNPs) | Malachite green (MG) in deionized (DI) water | 10−11 M–10−8 M | Not calculated | [ | ||
| Malachite green (MG) in sea water | ||||||
| WS2 nanosheets sandwiched between two Au nanoparticle layers (AuNPs/WS2@AuNPs) | Rhodamine 6G (R6G) | 10−11 M | Not calculated | [ | ||