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Reproducible and Bendable SERS Substrates with Tailored Wettability Using Block Copolymers and Anodic Aluminum Oxide Templates
Author(s) -
Lin YuLiang,
Karapala Vamsi Krishna,
Shen MingHui,
Chen YiFan,
He HungChieh,
Chang ChiaJui,
Chang YuChing,
Lu TienChang,
Liau Ian,
Chen JiunTai
Publication year - 2020
Publication title -
macromolecular rapid communications
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.348
H-Index - 154
eISSN - 1521-3927
pISSN - 1022-1336
DOI - 10.1002/marc.202000088
Subject(s) - materials science , rhodamine 6g , superhydrophilicity , wetting , copolymer , raman scattering , chemical engineering , rhodamine b , crystal violet , methacrylate , nanostructure , polystyrene , oxide , nanotechnology , raman spectroscopy , molecule , composite material , optics , photocatalysis , organic chemistry , polymer , medicine , chemistry , physics , pathology , metallurgy , engineering , catalysis
Surface properties are essential for substrates exhibiting high sensitivity in surface‐enhanced Raman scattering (SERS) applications. In this work, novel SERS hybrid substrates using polystyrene ‐block ‐poly(methyl methacrylate) and anodic aluminum oxide templates is presented. The hybrid substrates not only possess hierarchical porous nanostructures but also exhibit superhydrophilic surface properties with the water contact angle ≈0°. Such surfaces play an important role in providing uniform enhanced intensities over large areas (relative standard deviation ≈10%); moreover, these substrates are found to be highly sensitive (limit of detection ≈10 −12 m for rhodamine 6G (R6G)). The results show that the hybrid SERS substrates can achieve the simultaneous detection of multicomponent mixtures of different target molecules, such as R6G, crystal violet, and methylene blue. Furthermore, the bending experiments show that about 70% of the SERS intensities are maintained after bending from ≈30° to 150°.
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