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The influence of the chain length and the functional group steric accessibility of thiols on the phase transfer efficiency of gold nanoparticles from water to toluene Cover

The influence of the chain length and the functional group steric accessibility of thiols on the phase transfer efficiency of gold nanoparticles from water to toluene

Open Access
|Mar 2014

References

  1. 1. Murphy, C.J., Sau, T.K., Gole, A.M., Orendorff, C.J., Gao, J., Gou, L., Hunyadi, S.E. & Li, T. (2005). Anisotropic Metal Nanoparticles: Synthesis, Assembly, and Optical Applications. J. Phys. Chem. B 109(29), 13857-13870. DOI: 10.1021/jp0516846.
  2. 2. Ko, S.H., Park, I., Pan, H., Grigoropoulos, C.P., Pisano, A.P., Luscombe, C.K. & Frèchet, J.M.J. (2007). Direct Nanoimprinting of Metal Nanoparticles for Nanoscale Electronics Fabrication, Nano Lett. 7(7), 1869-1877. DOI: 10.1021/nl070333v.
  3. 3. Fendler, J.H. (2001). Chemical Self-assembly for Electronic Applications, Chem. Mater. 13(10), 3196-3210. DOI: 10.1021/cm010165m.
  4. 4. Maillard, M., Giorgio, S. & Pileni, M.P. (2002). Silver Nanodisks, Advanced Mat. 14(15), 1084-1086. DOI: 10.1002/1521-4095(20020805)14:15<1084.
  5. 5. Yang, Y., Ouyang, J., Ma, L., Tseng, J.H.R. & Chu, C.W. (2006). Electrical Switching and Bistability in Organic/Polymeric Thin Films and Memory Devices, Adv. Funct. Mater. 16(8), 1001-1014. DOI: 10.1002/adfm.200500429.
  6. 6. Tsoukalas, D. (2009). From silicon to organic nanoparticles memory devices. Phil. Trans. R. Soc. A 367(1905), 4169-4179. DOI: 10.1098/rsta.2008.0280.
  7. 7. Prakash, A., Ouyang, J., Lin, J.L. & Yanga, Y. (2006). Polymer memory device based on conjugated polymer and gold nanoparticles. Appl. Phys. 100(054309). http://dx.doi. org/10.1063/1.2337252
  8. 8. Manna, A., Imae, T., Aoi, K., Okada, M. & Yogo, T. (2001). Synthesis of dendrimer-passivated noble metal nanoparticles in a polar medium: comparison of size between silver and gold particles. Chem. Mater. 13(5), 1674-1681. DOI: 10.1021/ cm000416b.
  9. 9. Zhang, J.L., Han, B.X., Liu, M.H., Liu D.X., Dong, Z.X., Liu, J., Li, D., Wang, J., Dong, B.Z., Zhang, H. &. Rong, L.X. (2003). Ultrasonication-Induced Formation of Silver Nanofi bers in Reverse Micelles and Small-Angle X-ray Scattering Studies, J. Phys. Chem. B 107(16), 3679-3683. DOI: 10.1021/jp026738f.
  10. 10. McLeod, M.C., McHenry, R.S., Beckman, E.J. & Roberts, C.B. (2003). Synthesis and Stabilization of Silver Metallic Nanoparticles and Premetallic Intermediates in Perfl uoropolyether/ CO2 Reverse Micelle Systems. J. Phys. Chem. B 107(12), 2693-2700. DOI: 10.1021/jp0218645.
  11. 11. Brust, M., Walker, M., Bethell, D., Schiffrin, D.J. & Whyman, R. (1994). Synthesis of Thiol-derivatised Gold Nanoparticles in a Two-phase Liquid-Liquid System. J. Chem. Soc. Chem. Commun. 801-802. DOI: 10.1039/C39940000801.
  12. 12. Goulet, P.J.G., Bourret, G.R. & Lennox, R.B. (2012). Facile Phase Transfer of Large, Water-Soluble Metal Nanoparticles to Nonpolar Solvents, Langmuir 28(5), 2909−2913. DOI: 10.1021/la2038894.
  13. 13. Chandradass, J. & Kim, K.H. (2010). Synthesis and characterization of CuAl2O4 nanoparticles via a reverse microemulsion method. J. Ceram. Process. Res. 11(2), 150-153.
  14. 14. Gao, D., He, R., Carraro, C., Howe, R.T, Yang, P. & Maboudian, R. (2005). Selective Growth of Si Nanowire Arrays via Galvanic Displacement Processes in Water-in-Oil Microemulsions, J. Am. Chem. Soc.127(13), 4574-4575. DOI: 10.1021/ja043645y.
  15. 15. Eastoe, J., Hollamby, M.J. & Hudson, L. (2006). Recent advances in nanoparticle synthesis with reversed micelles, Adv. Colloid Interfac. 128-130, 5-15. DOI:10.1016/j.cis.2006.11.009.
  16. 16. Shon, Y.S., Chuc, S. & Voundi, P. (2009). Stability of tetraoctylammonium bromide-protected gold nanoparticles: Effects of anion treatments, Colloids and Surfaces A: Physicochem. Eng. Aspects 352(1-3), 12-17. DOI:10.1016/j. colsurfa.2009.09.037.
  17. 17. Frenkel, A.I., Nemzer, S., Pister, I., Soussan, L., Harris, T., Sun, Y. & Rafailovich, M.H. (2005). Size-controlled synthesis and characterization of thiol-stabilized gold nanoparticles. J. Chem. Phys. 123(18), 184701. DOI: 10.1063/1.2126666
  18. 18. Wang, X., Xu, S., Zhou, J. & Xu, W. (2010). A rapid phase transfer method for nanoparticles using alkylamine stabilizers. J. Colloid Interf. Sci. 348(1), 24-28. DOI:10.1016/j. jcis.2010.03.068.
  19. 19. Kumar, A., Mukherjee, P., Guha, A., Adyantaya, S.D., Mandale, A.B., Kumar, R. & Sastry, M. (2000). Amphoterization of colloidal gold particles by capping with valine molecules and their phase transfer from water to toluene by electrostatic coordination with fatty amine molecules. Langmuir 16(25), 9775-9783. DOI: 10.1021/la000886k.
  20. 20. Gaponik, N., Talapin, D.V., Rogach, A.L., Eychmuler, A. & Weller, H. (2002). Effi cient phase transfer of luminescent thiol-capped nanocrystals: from water to nonpolar organic solvents, Nano Lett. 2(8), 803-806. DOI: 10.1021/nl025662w.
  21. 21. Lala, N., Lalbegi, S.P., Adyanthaya, S.D. & Sastry, M. (2001). Phase transfer of aqueous gold colloidal particles capped with inclusion complexes of cyclodextrin and alkanethiol molecules into chloroform. Langmuir 17(12), 3766-3768. DOI: 10.1021/la0015765.
  22. 22. Machunsky, S. & Peuker, U.A. (2007). Liquid-Liquid Interfacial Transport of Nanoparticles. Hindawi Publishing Corporation, Physical Separation in Science and Engineering. Article ID 34832, 7 pages. DOI:10.1155/2007/34832.
  23. 23. Qian, H., Zhu, M., Andersen, U.N. & Jin, R. (2009). Facile, Large-Scale Synthesis of Dodecanethiol-Stabilized Au38. Clusters J. Phys. Chem. A 113(16), 4281-4284. DOI: 10.1021/jp810893w.
  24. 24. Grobelny, J., Delrio, F.W., Pradeep, N., Kim D.I., Hackley, V.A. & Cook, R.F. (2011). Methods in Molecular Biology. In S.E. McNeil (Ed.), Size measurement of nanoparticles using atomic force microscopy in Characterization of Nanoparticles Intended for Drug Delivery (pp. 71-82). vol. 697, Springer.
  25. 25. Barrena, E., Ocal, C. & Salmeron, M. (2001). Structure and stability of tilted-chain phases of alkanethiols on Au (111). J. Chem. Phys. 114(9), 4210-4015. DOI: 10.1063/1.1346676
  26. 26. Schreiber, F. (2000). Structure and growth of self-assembling monolayers, Progress in Surface Science 65(5-8), 151-256. DOI:10.1016/S0079-6816(00)00024-1.
DOI: https://doi.org/10.2478/pjct-2014-0015 | Journal eISSN: 3072-0389 (formerly 1899-4741) | Journal ISSN: 1509-8117
Language: English
Page range: 86 - 91
Published on: Mar 25, 2014
Published by: West Pomeranian University of Technology, Szczecin
In partnership with: Paradigm Publishing Services
Publication frequency: Volume open

© 2014 Katarzyna Soliwoda, Emilia Tomaszewska, Beata Tkacz-Szczesna, Marcin Rosowski, Grzegorz Celichowski, Jaroslaw Grobelny, published by West Pomeranian University of Technology, Szczecin
This work is licensed under the Creative Commons License.