Smart 3D Ag-decorated TiO 2 Nanostructure: An advanced synergistic SERS substrate for trace detection of analytes with diverse natures

被引:3
作者
Mai, Quan-Doan [1 ]
Thanh, Dinh Cong [2 ]
Anh, Nguyen Tuan [1 ]
Van Manh, Tien [1 ]
Bach, Ta Ngoc [3 ]
Nguyen, Ha-Anh [1 ]
Pham, Anh-Tuan [4 ]
Le, Anh-Tuan [1 ,4 ]
机构
[1] Phenikaa Univ, Phenikaa Univ Nano Inst PHENA, Hanoi 12116, Vietnam
[2] Phenikaa Univ, Fac Comp Sci, Hanoi 12116, Vietnam
[3] Vietnam Acad Sci & Technol, Inst Mat Sci IMS, 18 Hoang Quoc Viet, Hanoi 10000, Vietnam
[4] Phenikaa Univ, Fac Mat Sci & Engn MSE, Hanoi 12116, Vietnam
来源
SENSORS AND ACTUATORS B-CHEMICAL | 2024年 / 410卷
关键词
Advanced SERS substrate; Smart nanostructure; Dual -phase detection; Hotspot engineering; SERS sensor; ENHANCED RAMAN-SPECTROSCOPY; SURFACE; NANOPARTICLES; MOLECULES; AU;
D O I
10.1016/j.snb.2024.135651
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Designing surface-enhanced Raman scattering (SERS) substrates that combine multiple advanced features in synergy is highly desirable for the SERS technique, however, it has been a long-standing challenge due to inherent trade-offs in feature selection. For instance, while nanoplasmonic surface functionalization bolsters attraction to target analytes, it simultaneously introduces barriers to direct contact. Similarly, the intrinsic hydrophilic or hydrophobic nature of substrates often limits their sensing effectiveness across a wide range of analyte types. Here, we demonstrate a smart 3D Ag-decorated TiO2 nanostructure, an advanced synergistic SERS substrate, created by controlling the formation of Ag nanoparticles on functionalized TiO2 nanomaterials, which integrates four unique features: uniform hotspot distribution, efficient analyte trapping, accessible plasmonic surfaces, and dual-phase detection. This design brings unachieved sensor efficiency across a diverse array of analytes with varying sizes and hydrophobicity. Moreover, our design exhibits a novel dual-phase detection capability within mixtures of hydrophilic and hydrophobic analytes. As a proof-of-concept, our results highlight the potential of designing SERS substrates with multiple advanced features that work synergistically, enabling trace detection of a broader range of analyte types in various environments. More broadly, we anticipate that this work paves the way for the development of other nanomaterials that are capable of attracting diverse molecules while retaining key features such as accessible plasmonic surfaces and wide-area ordered hotspot distribution. Such nanomaterials could be powerful for advanced applications in hotspot engineering, surface analysis, catalysis, and plasmon-mediated reactions.
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页数:16
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