Detailed Investigation of Factors Affecting the Synthesis of SiO2@Au for the Enhancement of Raman Spectroscopy

. 2022 Sep 05 ; 12 (17) : . [epub] 20220905

Status PubMed-not-MEDLINE Jazyk angličtina Země Švýcarsko Médium electronic

Typ dokumentu časopisecké články

Perzistentní odkaz   https://www.medvik.cz/link/pmid36080115

Grantová podpora
SP2022/18; SP2022/34 Ministry of Education Youth and Sports

The reaction time, temperature, ratio of precursors, and concentration of sodium citrate are known as the main factors that affect the direct synthesis process of SiO2@Au based on the chemical reaction of HAuCl4 and sodium citrate. Hence, we investigated, in detail, and observed that these factors played a crucial role in determining the shape and size of synthesized nanoparticles. The significant enhancement of the SERS signal corresponding to the fabrication conditions is an existing challenge. Our study results show that the optimal reaction conditions for the fabrication of SiO2@Au are a 1:21 ratio of HAuCl4 to sodium citrate, with an initial concentration of sodium citrate of 4.2 mM, and a reaction time lasting longer than 6 h at a temperature of 80 °C. Under optimal conditions, our synthesis process result is SiO2@Au nanoparticles with a diameter of approximately 350 nm. In particular, the considerable enhancement of Raman intensities of SiO2@Au compared to SiO2 particles was examined.

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Guerrini L., Lopez-Tobar E., Garcia-Ramos J.V., Domingo C., Sanchez-Cortes S. New insights on the Aucore/Ptshellnanoparticle structure in the sub-monolayer range: SERS as a surface analyzing tool. Chem. Commun. 2011;47:3174–3176. doi: 10.1039/c0cc05013j. PubMed DOI

Das G.M., Managò S., Mangini M., De Luca A.C. Biosensing Using SERS Active Gold Nanostructures. Nanomaterials. 2021;11:2679. doi: 10.3390/nano11102679. PubMed DOI PMC

Burgmeier J., Feizpour A., Schade W., Reinhard B.M. Plasmonic nanoshell functionalized etched fiber Bragg gratings for highly sensitive refractive index measurements. Opt. Lett. 2015;40:546–549. doi: 10.1364/OL.40.000546. PubMed DOI

Peeters H., Keulemans M., Nuyts G., Vanmeert F., Li C., Minjauw M., Detavernier C., Bals S., Lenaerts S., Verbruggen S.W. Plasmonic gold-embedded TiO2 thin films as photocatalytic self-cleaning coatings. Appl. Catal. B Environ. 2020;267:118654. doi: 10.1016/j.apcatb.2020.118654. DOI

Kang H., Buchman J.T., Rodriguez R.S., Ring H.L., He J., Bantz K.C., Haynes C.L. Stabilization of Silver and Gold Nanoparticles: Preservation and Improvement of Plasmonic Functionalities. Chem. Rev. 2019;119:664–699. doi: 10.1021/acs.chemrev.8b00341. PubMed DOI

El-Brolossy T.A., Abdallah T., Mohamed M.B., Abdallah S., Easawi K., Negm S., Talaat H. Shape and size dependence of the surface plasmon resonance of gold nanoparticles studied by Photoacoustic technique. Eur. Phys. J. Spec. Top. 2008;153:361–364. doi: 10.1140/epjst/e2008-00462-0. DOI

Davis R.M., Campbell J.L., Burkitt S., Qiu Z., Kang S., Mehraein M., Miyasato D., Salinas H., Liu J.T.C., Zavaleta C. A Raman Imaging Approach Using CD47 Antibody-Labeled SERS Nanoparticles for Identifying Breast Cancer and Its Potential to Guide Surgical Resection. Nanomaterials. 2018;8:953. doi: 10.3390/nano8110953. PubMed DOI PMC

Wu J., Wang P., Wang F., Fang Y. Investigation of the Microstructures of Graphene Quantum Dots (GQDs) by Surface-Enhanced Raman Spectroscopy. Nanomaterials. 2018;8:864. doi: 10.3390/nano8100864. PubMed DOI PMC

Le Ru E., Etchegoin P. Principles of Surface-Enhanced Raman Spectroscopy: And related Plasmonic Effects. Elsevier; Amsterdam, The Netherlands: 2008.

Hirsch L.R., Jackson J.B., Lee A., Halas N.J., West J.L. A Whole Blood Immunoassay Using Gold Nanoshells. Anal. Chem. 2003;75:2377–2381. doi: 10.1021/ac0262210. PubMed DOI

Loo C., Lowery A., Halas N., West J., Drezek R. Immunotargeted Nanoshells for Integrated Cancer Imaging and Therapy. Nano Lett. 2005;5:709–711. doi: 10.1021/nl050127s. PubMed DOI

Haran G. Single-Molecule Raman Spectroscopy: A Probe of Surface Dynamics and Plasmonic Fields. Acc. Chem. Res. 2010;43:1135–1143. doi: 10.1021/ar100031v. PubMed DOI

Li D.-W., Zhai W.-L., Li Y.-T., Long Y.-T. Recent progress in surface enhanced Raman spectroscopy for the detection of environmental pollutants. Microchim. Acta. 2014;181:23–43. doi: 10.1007/s00604-013-1115-3. DOI

Thatai S., Khurana P., Prasad S., Kumar D. Plasmonic detection of Cd2+ ions using surface-enhanced Raman scattering active core–shell nanocomposite. Talanta. 2015;134:568–575. doi: 10.1016/j.talanta.2014.11.024. PubMed DOI

Darfarin G., Salehi R., Alizadeh E., Nasiri Motlagh B., Akbarzadeh A., Farajollahi A. The effect of SiO2/Au core–shell nanoparticles on breast cancer cell’s radiotherapy. Artif. Cells Nanomed. Biotechnol. 2018;46((Suppl. 2)):836–846. doi: 10.1080/21691401.2018.1470526. PubMed DOI

Cheng C., Li J., Lei H., Li B. Surface enhanced Raman scattering of gold nanoparticles aggregated by a gold-nanofilm-coated nanofiber. Photon. Res. 2018;6:357–362. doi: 10.1364/PRJ.6.000357. DOI

Martínez Porcel J.E., Rivas Aiello M.B., Arce V.B., Di Silvio D., Moya S.E., Mártire D.O. Effect of hybrid SiO2@Ag nanoparticles with raspberry-like morphology on the excited states of the photosensitizers Rose Bengal and riboflavin. New J. Chem. 2019;43:9123–9133. doi: 10.1039/C9NJ01013K. DOI

Assis M., Simoes L.G.P., Tremiliosi G.C., Coelho D., Minozzi D.T., Santos R.I., Vilela D.C.B., Santos J.R.D., Ribeiro L.K., Rosa I.L.V., et al. SiO2-Ag Composite as a Highly Virucidal Material: A Roadmap that Rapidly Eliminates SARS-CoV-2. Nanomaterials. 2021;11:638. doi: 10.3390/nano11030638. PubMed DOI PMC

Yao Q., Lu Z.-H., Zhang Z., Chen X., Lan Y. One-pot synthesis of core-shell Cu@SiO2 nanospheres and their catalysis for hydrolytic dehydrogenation of ammonia borane and hydrazine borane. Sci. Rep. 2014;4:7597. doi: 10.1038/srep07597. PubMed DOI PMC

Crane C.C., Wang F., Li J., Tao J., Zhu Y., Chen J. Synthesis of Copper–Silica Core–Shell Nanostructures with Sharp and Stable Localized Surface Plasmon Resonance. J. Phys. Chem. C. 2017;121:5684–5692. doi: 10.1021/acs.jpcc.6b11891. DOI

Kado S., Yokomine S., Kimura K. Widely Tunable Plasmon Resonances from Visible to Near-Infrared of Hollow Silver Nanoshells. Bull. Chem. Soc. Jpn. 2017;90:537–545. doi: 10.1246/bcsj.20160389. DOI

Shabaninezhad M., Ramakrishna G. Theoretical investigation of size, shape, and aspect ratio effect on the LSPR sensitivity of hollow-gold nanoshells. J. Chem. Phys. 2019;150:144116. doi: 10.1063/1.5090885. PubMed DOI

Jackson J.B., Westcott S.L., Hirsch L.R., West J.L., Halas N.J. Controlling the surface enhanced Raman effect via the nanoshell geometry. Appl. Phys. Lett. 2003;82:257–259. doi: 10.1063/1.1534916. DOI

Madamsetty V.S., Mukherjee A., Mukherjee S. Recent Trends of the Bio-Inspired Nanoparticles in Cancer Theranostics. Front. Pharmacol. 2019;10:1264. doi: 10.3389/fphar.2019.01264. PubMed DOI PMC

Cholkar K., Hirani N.D., Natarajan C. Emerging Nanotechnologies for Diagnostics, Drug Delivery and medical Devices. Elsevier; Amsterdam, The Netherlands: 2017. Nanotechnology-based medical and biomedical imaging for diagnostics; pp. 355–374.

Lu L., Randjelovic I., Capek R., Gaponik N., Yang J., Zhang H., Eychmüller A. Controlled Fabrication of Gold-Coated 3D Ordered Colloidal Crystal Films and Their Application in Surface-Enhanced Raman Spectroscopy. Chem. Mater. 2005;17:5731–5736. doi: 10.1021/cm051473d. DOI

Pham T., Jackson J.B., Halas N.J., Lee T.R. Preparation and Characterization of Gold Nanoshells Coated with Self-Assembled Monolayers. Langmuir. 2002;18:4915–4920. doi: 10.1021/la015561y. DOI

Li C.-L., Chen J.-K., Fan S.-K., Ko F.-H., Chang F.-C. Electrorheological Operation of Low-/High-Permittivity Core/Shell SiO2/Au Nanoparticle Microspheres for Display Media. ACS Appl. Mater. Interfaces. 2012;4:5650–5661. doi: 10.1021/am301543h. PubMed DOI

Lu Y., Yao G., Sun K., Huang Q. β-Cyclodextrin coated SiO2@Au@Ag core–shell nanoparticles for SERS detection of PCBs. Phys. Chem. Chem. Phys. 2015;17:21149–21157. doi: 10.1039/C4CP04904G. PubMed DOI

Montaño-Priede J.L., Coelho J.P., Guerrero-Martínez A., Peña-Rodríguez O., Pal U. Fabrication of Monodispersed Au@SiO2 Nanoparticles with Highly Stable Silica Layers by Ultrasound-Assisted Stöber Method. J. Phys. Chem. C. 2017;121:9543–9551. doi: 10.1021/acs.jpcc.7b00933. DOI

Saravanan S., Dubey R. Synthesis of SiO2 nanoparticles by sol-gel method and their optical and structural properties. Rom. J. Inf. Sci. Technol. 2020;23:105–112.

English M.D., Waclawik E.R. A novel method for the synthesis of monodisperse gold-coated silica nanoparticles. J. Nanopart. Res. 2012;14:650. doi: 10.1007/s11051-011-0650-2. DOI

Zhang S., Xu X., Zhang G., Liu B., Yang J. One-pot one-step synthesis of Au@SiO2 core–shell nanoparticles and their shell-thickness-dependent fluorescent properties. RSC Adv. 2019;9:17674–17678. doi: 10.1039/C9RA02543J. PubMed DOI PMC

Dobrowolska P., Krajewska A., Gajda-Rączka M., Bartosewicz B., Nyga P., Jankiewicz B.J. Application of Turkevich Method for Gold Nanoparticles Synthesis to Fabrication of SiO2@Au and TiO2@Au Core-Shell Nanostructures. Materials. 2015;8:2849–2862. doi: 10.3390/ma8062849. DOI

Costa Puerari R., Gonçalves R.A., Mottim Justino N., Schulz Vicentini D., Gerson Matias W. The influence of amine-functionalized SiO2 nanostructures upon nanofiltration membranes. Environ. Nanotechnol. Monit. Manag. 2020;13:100287. doi: 10.1016/j.enmm.2020.100287. DOI

Xue J., Wang C., Ma Z. A facile method to prepare a series of SiO2@Au core/shell structured nanoparticles. Mater. Chem. Phys. 2007;105:419–425. doi: 10.1016/j.matchemphys.2007.05.010. DOI

Wang R., Ji X., Huang Z., Xue Y., Wang D., Yang W. Citrate-Regulated Surface Morphology of SiO2@Au Particles To Control the Surface Plasmonic Properties. J. Phys. Chem. C. 2016;120:377–385.

Averitt R.D., Sarkar D., Halas N.J. Plasmon Resonance Shifts of Au-Coated Au2S Nanoshells: Insight into Multicomponent Nanoparticle Growth. Phys. Rev. Lett. 1997;78:4217–4220. doi: 10.1103/PhysRevLett.78.4217. DOI

Yukhymchuk V., Hreshchuk O., Valakh M.Y., Skoryk M., Efanov V., Matveevskaya N. Efficient core-SiO2/shell-Au nanostructures for surface enhanced Raman scattering. Semicond. Phys. Quantum Electron. 2014;13:217–221. doi: 10.15407/spqeo17.03.217. DOI

Kandpal D., Kalele S., Kulkarni S.K. Synthesis and characterization of silica-gold core-shell (SiO2@Au) nanoparticles. Pramana. 2007;69:277–283. doi: 10.1007/s12043-007-0128-z. DOI

Saini A., Maurer T., Lorenzo I.I., Santos A.R., Béal J., Goffard J., Gérard D., Vial A., Plain J. Synthesis and SERS Application of SiO2@Au Nanoparticles. Plasmonics. 2015;10:791–796. doi: 10.1007/s11468-014-9866-1. DOI

Wang K., Wang Y., Wang C., Jia X., Li J., Xiao R., Wang S. Facile synthesis of high-performance SiO2@Au core–shell nanoparticles with high SERS activity. RSC Adv. 2018;8:30825–30831. doi: 10.1039/C8RA05213A. PubMed DOI PMC

Khurana P., Thatai S., Boken J., Prasad S., Kumar D. Development of promising surface enhanced Raman scattering substrate: Freckled SiO2@Au nanocomposites. Microchem. J. 2015;122:45–49. doi: 10.1016/j.microc.2015.03.014. DOI

Tu K.T., Chung C.K. Enhancement of Surface Raman Spectroscopy Performance by Silver Nanoparticles on Resin Nanorods Arrays from Anodic Aluminum Oxide Template. Electrochem. Soc. 2017;164:B3081–B3086. doi: 10.1149/2.0121705jes. DOI

Link S., El-Sayed M.A. Size and Temperature Dependence of the Plasmon Absorption of Colloidal Gold Nanoparticles. J. Phys. Chem. B. 1999;103:4212–4217. doi: 10.1021/jp984796o. DOI

Cytodiagnostic, Introduction to Gold Nanoparticle Characterization. Cytodiagnostic.com 2011, Ultraviolet-Visible (UV-Vis) Spectroscopy. [(accessed on 20 April 2022)]. Available online: https://www.cytodiagnostics.com/pages/introduction-to-gold-nanoparticle-characterization.

Szunerits S., Spadavecchia J., Boukherroub R. Surface plasmon resonance: Signal amplification using colloidal gold nanoparticles for enhanced sensitivity. Rev. Anal. Chem. 2014;33:153–164. doi: 10.1515/revac-2014-0011. DOI

Li C., Li D., Wan G., Xu J., Hou W. Facile synthesis of concentrated gold nanoparticles with low size-distribution in water: Temperature and pH controls. Nanoscale Res. Lett. 2011;6:440. doi: 10.1186/1556-276X-6-440. PubMed DOI PMC

Song Z., Shi J., Zhang Z., Qi Z., Han S., Cao S. Mesoporous silica-coated gold nanorods with a thermally responsive polymeric cap for near-infrared-activated drug delivery. J. Mater. Sci. 2018;53:7165–7179. doi: 10.1007/s10853-018-2117-7. DOI

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