4.8 Article

Controllable MXene nano-sheet/Au nanostructure architectures for the ultra-sensitive molecule Raman detection

Journal

NANOSCALE
Volume 11, Issue 46, Pages 22230-22236

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c9nr08340e

Keywords

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Funding

  1. National Natural Science Foundation of China [61705070, 61675076, 51772108]
  2. China Postdoctoral Science Foundation [2017M612449, 2017T200545]
  3. Shenzhen Science and Technology Project [JCYJ20180507182248925, JCYJ20170818170222368]
  4. Analytical and Testing Center of Huazhong University of Science and Technology

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y Surface-enhanced Raman scattering (SERS) spectroscopy aims to augment the relatively weak molecular vibrations based on electromagnetic enhancement (EE) and chemical enhancement (CE) mechanisms, and offers a potential way for material identification, even up to the single-molecule level, under atmospheric conditions. We have subtly combined the advantages of EE and CE, and propose new MXene (Ti3C2TX) nano-sheet/Au nanostructure architectures to break through the limitations of the Raman detection with long-time stability. The MXene nanosheets with excellent biocompatibility can effectively prevent structural distortion from the interaction with the Au NSs, and can also guarantee a high enhancement effect owing to the spatially extended electromagnetic field distribution and electron injection into the molecules. The self-assembled Au nanostructures are aggregated based on the Volmer-Weber growth model, and the electromagnetic field distribution radically evolves depending on the morphologies of the resultant Au nanostructures, leading to a drastic compensation for the limited EE of the MXene nano-sheets. Consequently, the intensified Raman vibrational signals of R6G molecules lead to a high enhancement factor of 2.9 x 10(7), even at an ultra-low concentration of 10(-10) M. Similarly, the Raman signals of the methylene blue (MB) and crystal violet (CV) molecules can also be detected at low concentrations below 10(-8) M, manifesting universal applications of the MXene/Au architectures for ultra-sensitive molecular detection under atmospheric conditions.

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