10.1007/s40097-018-0252-y

Asymmetric attachment and functionalization of plasmonic nanoparticles on ceramic interfaces

  1. Department of Chemistry, Inorganic Chemistry, University of Cologne, Cologne, 50939, DE
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Published in Issue 12-02-2018

How to Cite

Stadler, D., Siribbal, S. M., Gessner, I., Öz, S., Ilyas, S., & Mathur, S. (2018). Asymmetric attachment and functionalization of plasmonic nanoparticles on ceramic interfaces. Journal of Nanostructure in Chemistry, 8(1 (March 2018). https://doi.org/10.1007/s40097-018-0252-y

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Abstract

Abstract The demands for materials that integrate more than one functional imaging or therapeutic unit are of increasing interest for biomedical applications. Here, we present the step-by-step preparation of asymmetric and optically active particles, namely, Gd 2 O 3 @Ag, Gd 2 O 3 @Au, SiO 2 –N 3 @Au, and SiO 2 –SH@Au . Successful attachment of plasmonic nanoparticles to the surface of metal-oxide spheres without necessity of a potentially toxic inter-adhesive layer was proven by optical methods as well as X-ray photoelectron spectroscopy. The combination of optical and magnetic properties as present in Gd 2 O 3 @Ag and Gd 2 O 3 @Au Janus-type particles leads to dual-imaging probes for optical and magnetic resonance imaging. In addition, functional groups, such as azide groups, were linked to the surface of silica particles previous to Au nanoparticle attachment. Subsequent site-selective click reactions with 5-FAM were successfully performed as demonstrated by UV–Vis measurements. All described systems exhibited excellent long-term stability and can, therefore, be considered as promising candidates for theranostic applications. Graphical abstract

Keywords

  • Theranostics,
  • Janus particles,
  • Optical materials,
  • Sputter deposition,
  • Magnetic

References

  1. Perro et al. (2005) Design and synthesis of janus micro-and nanoparticles (pp. 3745-3760) https://doi.org/10.1039/b505099e
  2. Chen et al. (2017) Hairy uniform permanently ligated hollow nanoparticles with precise dimension control and tunable optical properties (pp. 12956-12967) https://doi.org/10.1021/jacs.7b04545
  3. Hemmer et al. (2017) Optical nanoprobes for biomedical applications: shining a light on upconverting and near-infrared emitting nanoparticles for imaging, thermal sensing, and photodynamic therapy (pp. 4365-4392) https://doi.org/10.1039/C7TB00403F
  4. Zhu et al. (2013) Highly photoluminescent carbon dots for multicolor patterning, sensors, and bioimaging (pp. 4045-4049) https://doi.org/10.1002/ange.201300519
  5. Halas (2005) Playing with plasmons: tuning the optical resonant properties of metallic nanoshells (pp. 362-367) https://doi.org/10.1557/mrs2005.99
  6. Xu et al. (2016) Dextran-coated ultrasmall gd2o3 nanoparticles as potential T1 mri contrast agent (pp. 6086-6091) https://doi.org/10.1002/slct.201600832
  7. Huang et al. (2016) Optimizing contrast effect in T1-weighted magnetic resonance imaging of gd2o3-based nano-agent via dopamine chelation (pp. 249-254) https://doi.org/10.2174/2213385204666160630093924
  8. Chen et al. (2016) Crystallization of polymer chains chemically attached on a surface: lamellar orientation from flat-on to edge-on (pp. 4715-4722) https://doi.org/10.1021/acs.jpcb.6b02344
  9. Liang and Astruc (2011) The copper (I)-catalyzed alkyne-azide cycloaddition (CuAAC)“click” reaction and its applications. An overview (pp. 2933-2945) https://doi.org/10.1016/j.ccr.2011.06.028
  10. Presolski et al. (2011) Copper-catalyzed azide-alkyne click chemistry for bioconjugation (pp. 153-162)
  11. Kolb et al. (2001) Click chemistry: diverse chemical function from a few good reactions (pp. 2004-2021) https://doi.org/10.1002/1521-3773(20010601)40:11<2004::AID-ANIE2004>3.0.CO;2-5
  12. Song et al. (2011) Fluorescent-magnetic-biotargeting multifunctional nanobioprobes for detecting and isolating multiple types of tumor cells (pp. 761-770) https://doi.org/10.1021/nn1011336
  13. Kuhn et al. (2006) Proteolytic surface functionalization enhances in vitro magnetic nanoparticle mobility through extracellular matrix (pp. 306-312) https://doi.org/10.1021/nl052241g
  14. Sudimack and Lee (2000) Targeted drug delivery via the folate receptor (pp. 147-162) https://doi.org/10.1016/S0169-409X(99)00062-9
  15. Bolley et al. (2013) Carbodiimide versus click chemistry for nanoparticle surface functionalization: a comparative study for the elaboration of multimodal superparamagnetic nanoparticles targeting αvβ3 integrins (pp. 14639-14647) https://doi.org/10.1021/la403245h
  16. Ilyas et al. (2013) Selective conjugation of proteins by mining active proteomes through click-functionalized magnetic nanoparticles (pp. 9655-9663) https://doi.org/10.1021/nn402382g
  17. Koo et al. (2012) Bioorthogonal copper-free click chemistry in vivo for tumor-targeted delivery of nanoparticles (pp. 11836-11840) https://doi.org/10.1002/anie.201206703
  18. Lal et al. (2008) Nanoshell-enabled photothermal cancer therapy: impending clinical impact (pp. 1842-1851) https://doi.org/10.1021/ar800150g
  19. Hu and Gao (2010) Nanocomposites with spatially separated functionalities for combined imaging and magnetolytic therapy (pp. 7234-7237) https://doi.org/10.1021/ja102489q
  20. Xu et al. (2008) Au–Fe3O4 dumbbell nanoparticles as dual-functional probes (pp. 179-182) https://doi.org/10.1002/ange.200704392
  21. Ebbens and Howse (2011) Direct observation of the direction of motion for spherical catalytic swimmers (pp. 12293-12296) https://doi.org/10.1021/la2033127
  22. Kumar et al. (2013) Amphiphilic janus particles at fluid interfaces (pp. 6604-6617) https://doi.org/10.1039/c3sm50239b
  23. Chen et al. (2011) Supracolloidal reaction kinetics of janus spheres (pp. 199-202) https://doi.org/10.1126/science.1197451
  24. Walther et al. (2009) Self-assembly of janus cylinders into hierarchical superstructures (pp. 4720-4728) https://doi.org/10.1021/ja808614q
  25. Kaewsaneha et al. (2013) Janus colloidal particles: preparation, properties, and biomedical applications (pp. 1857-1869) https://doi.org/10.1021/am302528g
  26. Walther and Müller (2013) Janus particles: synthesis, self-assembly, physical properties, and applications (pp. 5194-5261) https://doi.org/10.1021/cr300089t
  27. Casagrande and Veyssie (1988) «Grains janus » : réalisation et premières observations des propriétés interfaciales (pp. 1423-1425)
  28. Lu et al. (2003) Asymmetric dimers can be formed by dewetting half-shells of gold deposited on the surfaces of spherical oxide colloids (pp. 12724-12725) https://doi.org/10.1021/ja0373014
  29. Love et al. (2002) Fabrication and wetting properties of metallic half-shells with submicron diameters (pp. 891-894) https://doi.org/10.1021/nl025633l
  30. Hsu et al. (1988) Preparation and properties of monodispersed colloidal particles of lanthanide compounds. 2. cerium (IV) (pp. 31-37) https://doi.org/10.1021/la00079a005
  31. Stöber et al. (1968) Controlled Growth of monodisperse silica spheres in the micron size range (pp. 62-69) https://doi.org/10.1016/0021-9797(68)90272-5
  32. Claesson and Philipse (2005) Monodisperse magnetizable composite silica spheres with tunable dipolar interactions (pp. 9412-9419) https://doi.org/10.1021/la051127a
  33. Cho et al. (2010) Fluorescent, superparamagnetic nanospheres for drug storage, targeting, and imaging: a multifunctional nanocarrier system for cancer diagnosis and treatment (pp. 5398-5404) https://doi.org/10.1021/nn101000e
  34. Di et al. (2011) Single-phased luminescent mesoporous nanoparticles for simultaneous cell imaging and anticancer drug delivery (pp. 7226-7233) https://doi.org/10.1016/j.biomaterials.2011.06.019
  35. Hesse et al. (2005) Georg Thieme Verlag https://doi.org/10.1055/b-002-46985
  36. Hunter (2013) Academic press
  37. Vivero-Escoto et al. (2012) Silica-based nanoprobes for biomedical imaging and theranostic applications (pp. 2673-2685) https://doi.org/10.1039/c2cs15229k
  38. Myroshnychenko et al. (2008) Modelling the optical response of gold nanoparticles (pp. 1792-1805) https://doi.org/10.1039/b711486a
  39. Canet-Ferrer et al. (2017) Hybrid magnetite–gold nanoparticles as bifunctional magnetic–plasmonic systems: three representative cases (pp. 205-216) https://doi.org/10.1039/C6NH00225K
  40. Wang et al. (2005) Controlled texturing modifies the surface topography and plasmonic properties of Au nanoshells (pp. 11083-11087) https://doi.org/10.1021/jp051466c
  41. Lupták et al. (2005) Growth of gadolinium oxide films for advanced MOS structure (pp. 154-157) https://doi.org/10.1016/j.mee.2005.04.059
  42. Ferraria et al. (2012) X-ray photoelectron spectroscopy: silver salts revisited (pp. 1988-1991) https://doi.org/10.1016/j.vacuum.2012.05.031
  43. Bhunia and Jana (2014) Reduced graphene oxide-silver nanoparticle composite as visible light photocatalyst for degradation of colorless endocrine disruptors (pp. 20085-20092) https://doi.org/10.1021/am505677x
  44. Weaver and Hoflund (1994) Surface characterization study of the thermal decomposition of AgO (pp. 8519-8524) https://doi.org/10.1021/j100085a035
  45. Erol et al. (2009) SERS not to be taken for granted in the presence of oxygen (pp. 7480-7481) https://doi.org/10.1021/ja807458x
  46. Muddiman et al. (1994) Characterization of polystyrene on etched silver using ion scattering and X-ray photoelectron spectroscopy: correlation of secondary ion yield in time-of-flight sims with surface coverage (pp. 11570-11575) https://doi.org/10.1021/j100095a044
  47. Turner and Single (1990) Determination of peak positions and areas from wide-scan XPS spectra (pp. 215-222) https://doi.org/10.1002/sia.740150305
  48. Eremenko et al. (2011) Silver and gold nanoparticles on Sol-Gel TiO2, ZrO2, SiO2 surfaces: optical sSpectra, photocatalytic activity, bactericide properties InTech
  49. Mihaylov et al. (2008) Oxidation by CO2 of Au0 species on La2O3-supported gold clusters chem
  50. Kolb et al. (2001) Click-chemie: diverse chemische funktionalität mit einer handvoll guter reaktionen (pp. 2056-2075) https://doi.org/10.1002/1521-3757(20010601)113:11<2056::AID-ANGE2056>3.0.CO;2-W
  51. Schweinfurth et al. (2009) New 1, 2, 3-triazole ligands through click reactions and their palladium and platinum complexes (pp. 9291-9297) https://doi.org/10.1039/b910660j
  52. Grignon et al. (1989) 6 (5) Carboxyfluorescein as a tracer of phloem sap translocation (pp. 871-877) https://doi.org/10.1002/j.1537-2197.1989.tb15064.x