PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Nanocząstki srebra - przegląd chemicznych metod syntezy

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
EN
Silver nanoparticles - review of chemical synthesis methods
Języki publikacji
PL
Abstrakty
PL
Nanocząstki srebra znajdują szerokie zastosowanie w wielu gałęziach przemysłu, ze względu na swoje niezwykłe właściwości warunkowane nanometrycznymi rozmiarami. W niniejszym artykule omówiono wybrane chemiczne metody wytwarzania nanocząstek srebra.
EN
Silver nanoparticles are widely used in many industries due to their unusual properties, which are dependent on the nanometric sizes. The article presents selected chemical methods of silver nanoparticles producing.
Rocznik
Strony
183--192
Opis fizyczny
Bibliogr. 49 poz.,
Twórcy
autor
autor
  • Instytut Chemii i Technologii Nieorganicznej, Wydział Inżynierii i Technologii Chemicznej, Politechnika Krakowska
Bibliografia
  • [1] Świderski F., Waszkiewicz-Robak B., Nanotechnologia – teraźniejszość i przyszłość, Postępy techniki przetwórstwa spożywczego, 1, 2006, 55-57.
  • [2] Zhang W., Qiao H., Chen J., Review. Synthesis of silver nanoparticles – Effects of concerned parameters in water/oil microemulsion, Materials Science and Engineering B, 142, 2007, 1-15.
  • [3] Panyala N.R., Peña-Méndez E.M., Havel J., Silver or silver nanoparticles: a hazardous threat to the environment and human health?, Journal of Applied Biomedicine, 6, 2008, 117-129.
  • [4] Bhushan B., Handbook of Nanotechnology, Springer, 2004.
  • [5] Kelsall R.W., Hamley I.W., Geoghegan M., Nanotechnologie, PWN, Warszawa 2008.
  • [6] Maruyama M., Matsubayashi R., Iwakuro H., Komatsu T., Silver nanosintering: a lead - free alternative to soldering, Applied Physics A – Materials Science & Processing, 93, 2008, 467-470.
  • [7] Song J.Y., Kim B.S., Rapid biological synthesis of silver nanoparticles using plant leaf extracts, Bioprocess and Biosystems Engineering, 32, 2009, 79-84.
  • [8] Panigrahi S., Kundu S., Ghosh S.K., Nath S., Pal T., General method of synthesis for metal nenoparticles, Journal of Nanoparticle Research, 6, 2004, 411-414.
  • [9] Wzorek Z., Konopka M., Nanosrebro – nowy środek bakteriobójczy, Czasopismo Techniczne, z. 1-Ch/2007, Wydawnictwo Politechniki Krakowskiej, Kraków 2007.
  • [10] Tien D.-C., Tseng K.-H., Liao C.-Y., Huang J.-C., Tsung T.-T., Discovery of ionic silver in silver nanoparticle suspension fabricated by arc discharge method, Journal of Alloys and Compounds, 463, 2008, 408-411.
  • [11] Rai M., Yadav A., Gade A., Research review paper, Silver nanoparticles as a new generation of animicrobals, Biotechnology Advances, 27, 2009, 76-83.
  • [12] Chen D., Qiao X., Qiu X., Chen J., Synthesis and electrical properties of uniform silver nanoparticles for electronic applications, Journal of Material Science, 44, 2009, 1076-1081.
  • [13] Xu J., Han X., Liu H., Hu Y., Synthesis and optical properties of silver nanoparticles stabilized by gemini surfactant, Colloids and Surfaces A: Physicochemical and Engineering Aspects, 273, 2006, 179-183.
  • [14] Banach M., Kowalski Z., Wzorek Z., Nanosrebro – wytwarzanie, właściwości bakteriobójcze, zastosowanie, Chemik, 9, 2007, 435-438.
  • [15] Sun L., Zhang Z., Dang H., A novel method for preparation of silver nanoparticles, Materials Letters, 57, 2003, 3874-3879.
  • [16] Khaydarov R.A., Khaydarov R.R., Gapurova O., Estrin Y., Scheper T., Electrochemical method for the synthesis of silver nanoparticles, Journal of Nanoparticle Research, 11, 2009, 1193-1200.
  • [17] Johans C., Clohessy J., Fantini S., Kontturi K., Cunnane V.J., Electrosynthesis of polyphenylpyrrole coated silver particles at a liquid-liquid interface, Electrochemistry Comunnications, 4, 2004, 227-230.
  • [18] Starowicz M., Stypuła B., Banaś J., Electrochemical synthesis of silver nanoparticles, Electrochemistry Comunnications 8, 2006, 227-230.
  • [19] Sun Y., Xia Y., Shape-controlled synthesis of gold and silver nanoparticles, Science, 298, 2002, 2176-2179.
  • [20] Goia D.V., Matijević E., Preparation of manodospersed metal particles, New Journal of Chemistry, 98, 1998, 1203-1215.
  • [21] Nath N., Chilkoti A., Label free calorimetric biosensing using nanoparticles, Journal of Fluorescence, 14, 2004, 377-389.
  • [22] Patakfalvi R.J., Dékány I., Nucleation and growth silver nanoparticles monitored by titration microcalorimetry, Journal of Thermal Analysis and Calorimetry, 79, 2005, 587-594.
  • [23] Zhou Q., Bao J., Xu Z., A novel-shape selective fabrication of nanostructured silver, Science in China (Series B) 45, 2002, 416-420.
  • [24] Jiang G.-H., Wang L., Chan T., Yu H.-J., Wang J.J., Preparation and characterisation of dendritic silver nanoparticles, Journal of Materials Science, 40, 2005, 1681-1683.
  • [25] Douglas F., Yañez R., Ros J., Marín S., de la Escosura-Muñz A., Alegret S., Merkoçi A., Silver, gold and corresponding core shell nanoparticles: synthesis and characterization, Journal of Nanoparticle Research, 10, 2008, 97-106.
  • [26] Sabatini C.A., Pereira R.V., Gehlen M.H., Fluorescence modulation of acridine and coumarin dyes by silver nanoparticles, Journal of Fluorescence, 17, 2007, 377-382.
  • [27] Šileikaitė A., Prosyčevas I., Puišo J., Juraitis A., Guobienė A., Analysis of silver nanoparticles produced by chemical reduction of silver salt solution, Materials Science, 12, 2006, 287-291.
  • [28] Chou K.-S., Ren C.-Y., Synthesis of nanosized silver particles by chemical reduction method, Materials Chmistry and Physics, 64, 2000, 241-246.
  • [29] Martínez-Castañón G.A., Niño-Martínez N., Martínez-Gutierrez F., Martínez-Mendoza J.R., Ruiz F., Synthesis and antibacterial activity of silver nanoparticles with different sizes, Journal of Nanoparticle Research, 10, 2008, 1343-1348.
  • [30] Bera T., Ramachandrarao P., Morphological changes in biomimetically synthesized hydroxyapatite and silver nanoparticles for biological applications, Journal of Material Science, 44, 2009, 2264-2270.
  • [31] Wang D., Song C., Hu Z., Zhou X., Synthesis of silver nanoparticles with fake-like shapes, Meterials Letters, 59, 2005, 1760-1763.
  • [32] Hah H.-J., Koo S.-M., Lee S.-H., Preparation of silver nanoparticles through alcohol reduction with organoalkoxysilanes, Journal of Sol-Gel Science and Technology, 26, 2003, 467-471.
  • [33] Biju V., Itoh T., Anas A., Sujith A., Ishikawa M., Semiconductor quantum dots and metal nanoparticles: synthesis, optical properties, and biological applications, Analytical and Bioanalitycal Chemistry, 391, 2008, 2469-2495.
  • [34] Liu J.-K., Yang X.-H., Tian H.-G., Preparation of silver/hydroxyapatite nanocomposite spheres, Powder Technology, 184, 2008, 21-24.
  • [35] Kim J.S., Kuk E, Yu K.N., Kim J.H., Park S.J., Lee H.J., Kim S.H., Park Y.K., Park Y.H., Hwang C.Y., Kim Y.K., Lee Y.S., Jeong D.H., Cho M.H., Antymicrobial effect of silver nanoparticles, Nanomedicine, Nanotechnology, Biology and Medicine, 3, 2007, 95-101.
  • [36] Zhang W., Qiao X., Chen J., Synthesis of nanosilver colloidal particles in water/oil microemulsion, Colloids and Surfaces A: Physicochemical and Engineering Aspects, 299, 2007, 22-28.
  • [37] Zhang W., Qiao X., Chen J., Formation of silver nanoparticles in SDS inverse microemulsions, Materials Chemistry and Physics, 109, 2008, 411-416.
  • [38] Zhang W., Qiao X., Chen J., Self-assembly and controlled synthesis of silver nanoparticles in SDS quaternary microemulsion, Materials Letters, 62, 2008, 1689-1692.
  • [39] Chaudhari V.R., Haram S.K., Kulshreshtha S.K., Bellare J.R., Hassan P.A., Micelle assisted morphological evolution of silver nanoparticles, Colloids and Surfaces A: Physicochemical and Engineering Aspects, 301, 2007, 475-480.
  • [40] Ghosh S.K., Kundu S., Mandal M., Nath S., Pal T., Studies on the evolution of silver nanoparticles in micelle by UV – photoactivation, Journal of Nanoparticle Research, 5, 2003, 577-587.
  • [41] Dung T.T.N., Buu N.Q., Quang D.V., Haz H.T., Bang L.A., Cham N.H., Ly N.T., Trung N.V., Synthesis of nanosilver particles by reverse micelle method and study of their bactericidal properties, Journal of Physics: Conference Series, 187, 2009, 1-8.
  • [42] Xie Y., Ye R., Liu H., Synthesis of silver nanoparticles in reverse micelles stabilized by natural biosurfactant, Colloids and Surfaces A: Physicochemical and Engineering Aspects, 279, 2006, 175-178.
  • [43] Zhang W., Qiao X., Chen J., Wang H., Preparation of silver nanoparticles in water-in-oil AOT reverse micelles, Journal of Colloid and Interface Science, 302, 2006, 370-373.
  • [44] Egorova E.M., Revina A.A., Rumyantsev B.V., Smirnov O.K., Toidze Z.G., Shiskhov D.I., Stable silver nanoparticles in aqueous dispersions obtained from micellar solution, Russian Journal of Applied Chemistry, 75, 2002, 1620-1625.
  • [45] Cioffi N., Ditaranto N., Torsi L., Picca R.A., De Giglio E., Sabbatini L., Novello L., Tantillo G., Bleve-Zecheo T., Zambonin P.G., Synthesis, analytical characterization and bioactivity of Ag and Cu nanoparticles embedded in poly-vinyl-methyl-ketone flms, Analytical and Bioanalytical Chemistry, 382, 2005, 1912-1918.
  • [46] Ma H., Yin B., Wang S., Jiao Y., Pan W., Huang S., Chen S., Meng F., Synthesis of silver and gold nanoparticles by a novel electrochemical method, ChemPhysChem, 5, 2004, 68-75.
  • [47] Yin B., Ma H., Wang S., Chen S., Electrochemical synthesis of silver nanoparticles under protection of Poly(N-vinylpyrrolidone), The Journal of Physical Chemistry B, 107, 2003, 8898-8904.
  • [48] Zhu J.-J., Liao X., Chen H.-Y., Electrochemical preparation of silver dendrites in the presence of DNA, Materials Research Bulletin, 36, 2001, 1687-1692.
  • [49] Cui S., Liu Y., Yang Z., Wei X., Construction of silver nanowires on DNA template by an electrochemical techniques, Materials & Design, 28, 2007, 722-725.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BGPK-3303-2805
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.