The Fabrication and Detection Performance of High Sensitivity Au-Ag Alloy Nanostar/Paper Flexible Surface Enhanced Raman Spectroscopy Sensors

Zhiying Deng , Tianyi Wang , Shiyi Cao , Yuan Zhao , Xiaoyu Han , Jihong Zhang , Jun Xie

Journal of Wuhan University of Technology Materials Science Edition ›› 2024, Vol. 39 ›› Issue (2) : 436 -443.

PDF
Journal of Wuhan University of Technology Materials Science Edition ›› 2024, Vol. 39 ›› Issue (2) : 436 -443. DOI: 10.1007/s11595-024-2899-1
Metallic Materials

The Fabrication and Detection Performance of High Sensitivity Au-Ag Alloy Nanostar/Paper Flexible Surface Enhanced Raman Spectroscopy Sensors

Author information +
History +
PDF

Abstract

Au-Ag alloy nanostars based flexible paper surface enhanced Raman spectroscopy sensors were fabricated through simple nanostar coating on regular office paper, and the surface enhanced Raman spectroscopy detection performances were investigated using crystal violet dye analyte. Au-Ag nanostars with sharp tips were synthesized via metal ions reduction method. Transmission electron microscope images, X-Ray diffraction pattern and energy dispersive spectroscopy elemental mapping confirmed the nanostar geometry and Au/Ag components of the nanostructure. UV-Vis-NIR absorption spectrum shows wide local surface plasmon resonance induced optical extinction. In addition, finite-difference time-domain simulation shows much stronger electromagnetic field from nanostars than from sphere nanoparticle. The effect of coating layer on Raman signal intensities was discussed, and optimized 5-layer coating with best Raman signal was obtained. The Au-Ag nanostatrs homogeneously distribute on paper fiber surface. The detection limit is 10−10 M, and the relationship between analyte concentrations and Raman signal intensities shows well linear, for potential quantitative analysis. The calculated enhancement factor is 4.795×106. The flexible paper surface enhanced Raman spectroscopy sensors could be applied for trace chemical and biology molecule detection.

Keywords

surface-enhanced raman / gold-silver alloy nanostars / paper-based SERS sensor / flexibility

Cite this article

Download citation ▾
Zhiying Deng, Tianyi Wang, Shiyi Cao, Yuan Zhao, Xiaoyu Han, Jihong Zhang, Jun Xie. The Fabrication and Detection Performance of High Sensitivity Au-Ag Alloy Nanostar/Paper Flexible Surface Enhanced Raman Spectroscopy Sensors. Journal of Wuhan University of Technology Materials Science Edition, 2024, 39(2): 436-443 DOI:10.1007/s11595-024-2899-1

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Sarah M, Karen F, Duncan G, et al. Surface Enhanced Raman Spectroscopy (SERS): Potential Applications for Disease Detection and Treatment[J]. Journal of Photochemistry and Photobiology C: Photochemistry Reviews, 2014, 21: 40-53.

[2]

Chao L, Di X, Xuan D, et al. A review. Trends in Food Science & Technology, 2022, 128: 90-101.

[3]

Pozzi F, Lombardi JR, Bruni S, et al. Sample Treatment Considerations in the Analysis of Organic Colorants by Surface-enhanced Raman Scattering [J]. Analytical Chemistry, 2012, 84(8): 3 751-3 757.

[4]

Li D, Yao D, Li C, et al. Nanosol SERS Quantitative Analytical Method: A Review, Trac-Trend[J]. Anal. Chem., 2020, 127: 115 885.

[5]

Li JF, Zhang YJ, Ding SY, et al. Core-Shell Nanoparticle-Enhanced Raman Spectroscopy[J]. Chemical Reviews, 2017, 117(7): 5 002-5 069.

[6]

Yan TT, Zhang LL, Jiang TT, et al. Controllable SERS Performance for the Flexible Paper-like Films of Reduced Graphene Oxide[J]. Applied Surface Science, 2017, 419: 373-381.

[7]

Ogundare SA, Zyl WE. A Review of Cellulose-based Substrates for SERS: Fundamentals, Design Principles, Applications[J]. Cellulose, 2019, 26: 6 489-6 528.

[8]

Restaino SM, White IM. A Critical Review of Flexible and Porous SERS Sensors for Analytical Chemistry at the Point-of-sample[J]. Analytica Chimica Acta, 2019, 1060: 17-29.

[9]

Shinkil Sarkar S. Daily-Life Candidates as Flexible SERS Substrates for Pesticide Detection: a Comparative Study[J]. Plasmonics, 2022, 17(3): 1 293-1 303.

[10]

Lin S, Lin X, Liu YL, et al. Flexible Fabrication of a Paper-fluidic SERS S ensor Coated with a Monolayer of Core-shell Nanospheres for Reliable Quantitative SERS Measurements[J]. Analytica Chimica Acta, 2020, 1108: 167-176.

[11]

Vo-Dinh T, Hiromoto MYK, Begun GM, et al. Surface-enhanced Raman Spectrometry for Trace Organogenesis[J]. Analytical Chemistry, 1984, 56(9): 166-1670.

[12]

Liu T, Tsai K, Wang H, et al. Functionalized Arrays of Raman-enhancing Nanoparticles for Capture and Culture-free Analysis of Bacteria in Human Blood[J]. Nature Communications, 2011, 2(1): 1 102-1 106.

[13]

Yevgeniya K, Mariia E, Pavel P, et al. Flexible SERS Substrate for Portable Raman Analysis of Biosamples[J]. Applied Surface Science, 2018, 458: 95-99.

[14]

Torul H, Çiftçi H, Çetin D, et al. Paper Membrane-based SERS Platform for the Determination of Glucose in Blood Samples[J]. Analytical and Bioanalytical Chemistry, 2015, 407(27): 8 243-8 251.

[15]

Xie J, Li L, Wang Z, et al. Flexible Paper-based SERS Substrate Strategy for Rapid Detection of Methyl Parathion on the Surface of Fruit[J]. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 2020, 231: 1 386-1 425.

[16]

Verma M, Tania K, Santosh K, et al. Paper Based Low-cost Flexible SERS Sensor for Food Adulterant Detection [J]. Environmental Technology & Innovation, 2021, 24: 102 033.

[17]

Zhang K, Zhao JJ, Xu HY, et al. Multifunctional Paper Strip Based on Self-Assembled Interfacial Plasmonic Nanoparticle Arrays for Sensitive SERS Detection[J]. ACS Appl. Mater. Interfaces, 2015, 7(30): 16 767-16 774.

[18]

Stiles PL, Dieringer JA, Shah NL, et al. Surface-Enhanced Raman Spectroscopy [J]. Annual Review of Analytical Chemistry, 2008, 1: 601-626.

[19]

Moskovits M. Surface Roughness and the Enhanced Intensity of Raman Scattering by Molecules Adsorbed on Metals[J]. The Journal of Chemical Physics, 1978, 69(9): 4 159-4 159.

[20]

Schlücker S. Surface-Enhanced Raman Spectroscopy: Concepts and Chemical Applications[J]. Angewandte Chemie, 2014, 53: 4 756-4 795.

[21]

Jiang N, Zhuo X, Wan J, et al. Active Plasmonics: Principles, Structures, and Applications[J]. Chemical Reviews, 2018, 118(6): 3 054-3 099.

[22]

Yang X, Yang M, Pang B, et al. Gold Nanomaterials at Work in Biomedicine[J]. Chemical Reviews, 2015, 115(19): 10 410-10 488.

[23]

Peter P, Hammed A, Romen H, et al. Anisotropic Gold Nanoparticles: Preparation and Applications in Catalysis [J]. Chinese Journal of Catalysis, 2016, 37(10): 1 619-1 650.

[24]

Cheng M, Wang J, Fang J, et al. Controllable Synthesis of Au Nanostar with Plasmonic Hybridization Properties and Its Sensitive Molecular Recognition Applications [J]. Optical Materials, 2022, 129: 112 483.

[25]

McLellan JM, Li ZY, Siekkinen AR, et al. The SERS Activity of a Supported Ag Nanocube Strongly Depends on Its Orientation Relative to Laser Polarization[J]. Nano Letters, 2007, 7(4): 1 013-1 017.

[26]

Murphy CJ, Sau TK, Gole AM, et al. Anisotropic Metal Nanoparticles: Synthesis, Assembly, and Optical Applications[J]. The Journal of Physical Chemistry B, 2005, 109(29): 13 857-13 870.

[27]

Gole A, Murphy CJ. Seed-mediated Synthesis of Gold Nanorods: Role of the Size and Nature of the Seed[J]. Chemistry of Materials, 2015, 16(19): 3 633-3 640.

[28]

Wiley B, Sun Y, Xia Y, et al. Synthesis of Silver Nanostructures with Controlled Shapes and Properties [J]. Acc Chem. Res., 2007, 40(4): 1 067-1 076.

[29]

Zhuo X, Henriksen-Lacey M, Aberasturi D, et al. Shielded Silver Nanorods for Bioapplications [J]. Chemistry of Materials, 2020, 32(13): 5 879-5 889.

[30]

Xie J, Zhang Q, Lee JY, et al. The Synthesis of SERS-active Gold Nanoflower Tags for in vivo Applications [J]. ACS Nano, 2008, 2(12): 2 473

[31]

Minati L, Benetti F, Chiappini A, et al. One-step Synthesis of Starshaped Gold Nanoparticles[J]. Colloids and Surfaces a Physicochemical and Engineering Aspects, 2014, 441: 623-628.

[32]

Cheng L, Huang J, Chen H, et al. Seedless, Silver-induced Synthesis of Star-shaped Gold/silver Bimetallic Nanoparticles as High Efficiency Photothermal Therapy Reagent [J]. Journal of Materials Chemistry, 2012, 22: 2 244-2 253.

[33]

Liu MZ, Guyot-Sionnest P. Mechanism of Silver(I)-assisted Growth of Gold Nanorods and Bipyramids[J]. Journal of Physical Chemistry B, 2005, 109(47): 22 192-22 200.

[34]

Tian Q, Cao S, He G, et al. Plasmonic Au-Ag Alloy Nanostars Based High Sensitivity Surface Enhanced Raman Spectroscopy Fiber Probes[J]. Journal of Alloys and Compounds, 2022, 900: 163 345.

[35]

Ha Pham TT, Vu XH, Dien ND, et al. The Structural Transition of Bimetallic Ag-Au from Core/Shell to Alloy and SERS Application[J]. RSC Advance, 2020, 10: 24 577-24 594.

[36]

Zhuo X, Zhu X, Li Q, et al. Gold Nano Bipyramid -Directed Growth of Length-Variable Silver Nanorods with Multipolar Plasmon Resonances[J]. ACS Nano, 2015, 9: 7523-7535.

[37]

Li J, Chen X, Weng G, et al. A Highly Specific and Sensitive Fluorescence Quenching Probe for Carcinoembryonic Antigen Detection Based on Tetrapod Au Nanostars with Ag Coating[J]. Materials. Today Communication, 2020, 25: 101 373.

[38]

Zhu J. Shape Dependent Full Width at Half Maximum of the Absorption Band in Gold Nanorods [J]. Physics Letters A, 2005, 336(6): 466-471.

[39]

Zhang L, Liu T, Liu K, et al. Gold Nanoframes by Nonepitaxial Growth of Au on Ag Nanocrystals for Surface-Enhanced Raman Spectroscopy[J]. Nano Lett., 2015, 15: 4 448-4 454.

[40]

Canamares MV, Chenal C, Birke R L, et al. DFT, SERS, and Single-molecule SERS of Crystal Violet[J]. The Journal of Physical Chemistry C, 2008, 112(51): 20 295-20 300.

[41]

Oliveira M, Quaresma P, Almeida M, et al. Office Paper Decorated with Silver Nanostars - an Alternative Cost Effective Platform for Trace Analyte Detection by SERS[J]. Scientific Reports, 2017, 7: 2 480.

[42]

Gupta R, Weimer WA. High Enhancement Factor Gold Films for Surface Enhanced Raman Spectroscopy[J]. Chemical Physics Letters, 2003, 374(3): 302-306.

[43]

Liu Z, Yang Z, Peng B, et al. Highly Sensitive, Uniform, and Reproducible Surface-enhanced Raman Spectroscopy from Hollow Au-Ag alloy Nano-urchins[J]. Adv. Mater., 2014, 26: 2 431-2 439.

[44]

Li J, Wang Q, Wang J, et al. Quantitative SERS Sensor Based on Self-assembled Au@Ag Heterogeneous Nanocuboids Monolayer with High Enhancement Factor for Practical Quantitative Detection [J]. Analytical and Bioanalytical Chemistry, 2021, 413: 4 207-4 215.

[45]

Wang X, Wu Y, Wen X, et al. Composite Structure of Au Film/PMMA Grating Coated with Au Nanocubes for SERS Substrate [J]. Optical Materials, 2021, 121: 111 536.

AI Summary AI Mindmap
PDF

158

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/