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Silver nanoparticles, from

In the meantime, to protect the silver nanoparticles from the photoelectrochemical dissolution, the particles may be coated with a polymer matrix or a hydrophobic thiol [10]. [Pg.265]

Liu YC, Lin LH (2004) New pathway for the synthesis of ultrafine silver nanoparticles from bulk silver substrates in aqueous solutions by sonoelectrochemical methods. Electrochem Commun 6 1163-1168... [Pg.129]

A relatively recent development is the exploitation of w/c microemulsions for the synthesis of metallic and semiconductor nanoparticles. By reducing silver nitrate, Ji et al. (1999) were able to harvest silver nanoparticles from a w/c microemulsion. Analysis of the plasmon resonance peak at 400 nm indicated that samples collected at intervals of 20 and 10 min were 4 nm in diameter. A subsequent decrease in the intensity of the plasmon band, over a period of 1 h, was attributed to the slow flocculation of nanoparticles. [Pg.142]

Taleb, A., Petit, C., and Pileni, M.P. 1997. Synthesis of highly monodisperse silver nanoparticles from AOT reverse micelles A way to 2D and 3D self-organization. Chemistry of Materials, 9 950-9. [Pg.339]

FORMATION OF SILVER NANOPARTICLES FROM A (2,3-DYHYDROXY-4,6-DI-TERT-BUTYLPHENYLTHIO-)ACETIC ACID... [Pg.381]

In this paper, we discuss the problem of optical diagnostics for 2D noble-metal nanoparticle layers assembled by self-organization techniques [1,4]. We show the possibility of reconstruction of size and concentration parameters for spherical silver nanoparticles from the plasmon absorbance spectra. [Pg.165]

Zahir, A.A., Rahuman, A.A., 2012. Evaluation of different extracts and synthesized silver nanoparticles from leaves of Euphorbia prostrate against Haemaphysalis bispinosa and Hippobosca maculate. Vet. Parasitol. 187 (3—4), 511—520. [Pg.177]

Otari, S.V., Patil, R.M., Nadaf, N.H., Ghosh, S.J., Pawar, S.H., 2012. Green biosynthesis of silver nanoparticles from an actinobacteria Rhodococcus sp. Mater. Lett. 72, 92—94. [Pg.397]

Zaki, S., El Kady, M.F., Abd-El-Haleem, D., 2011. Biosynthesis and stmctural characterization of silver nanoparticles from bacterial isolates. Mater. Res. BuU. 46, 1571-1576. [Pg.399]

Figure 8.14. fa] Absorbance spectra of silver nanoparticles shown in Fig. 8.12 fb] Calibration of silver nanoparticles from absorbance at 406 nm following determination of stock concentration. Taken with permission from [105], P. Rijiravanich, M. Somasundrum, and W. Surareungchai, Anal. Chem. 80, 3904-3909 (2008). Supporting Information. American Chemical Society. [Pg.277]

Nanoparticle penetration has been measured with a wide range of filter media by using silver nanoparticles from 3 nm to 20 nm at three different face velocities in order to define nanoparticle filtration characteristics of commercial fibrous filter media. After size classification by using a nano-DMA, the particle counts were measured by an ultrafine condensation particle counter (UCPC) both upstream and downstream of the test filter in order to determine the nanoparticle penetration for each specific... [Pg.103]

FIGURE 2.10 Transmission electron microscopy images of silver nanoparticles from plant samples irrigated with (a) 10 g/L Ag as AgNOj and (b) 10 g/L Ag as Ag(NH3)2N03. (With kind permission from Springer Science + Business Media from Journal of Nanoparticle Research, Haverkamp and Marshall. The mechanism of metal nanoparticle formation in plants Limits on accumulation, 11, 2008, 1453-1463.)... [Pg.12]

Yamini et al. Synthesis of Silver Nanoparticles from Cleome viscosa and found that the extract of Cleome viscose was capable of manufacturing silver nanoparticles extracellular and are relatively constant in resolution it had been conjointly confirmed that the composite discharge of silver at a core is capable of interpretation antimicrobial affectivity and tried to move against the microbes [33]. [Pg.222]

S.L.G. Yamini, Green synthesis of silver nanoparticles from Cleome viscosa Synthesis and antimicrobial activity. International Conference on Bioscience., 5 334-338,2011. [Pg.233]

Table 4 Calculated values of crystallite size and microstrain of silver nanoparticles from Williamson-Hall plot... Table 4 Calculated values of crystallite size and microstrain of silver nanoparticles from Williamson-Hall plot...
Magdassi, S., A. Kamyshny, and M. Grouchko, 2006. Making connections Aqneons dispersions of silver nanoparticles from conductive inkjet inks. Eur. Coatings J. 11 54. [Pg.353]

Rosemary, M. J. and T. Pradeep. 2003. Solvothermal synthesis of silver nanoparticles from thiolates. J. Colloid Interface Sci. 268 (1) 81-84. [Pg.354]

Kumar, A., H. Joshi, R. Pasricha, A. B. Mandale, and M. Sastry. 2003. Phase transfer of silver nanoparticles from aqueous to organic solutions using fatty amine molecules. J. Colloid Interface Sci. 264 (2) 396 01. [Pg.354]

Manna, A. Imae, T. lida, M. Hisamatsu, N. (2001). Formation of Silver Nanoparticles from a N-Hexadecylethylenediamine Silver Nitrate Complex. Langmuir, 17, 6000-6004. [Pg.109]


See other pages where Silver nanoparticles, from is mentioned: [Pg.406]    [Pg.154]    [Pg.236]    [Pg.231]    [Pg.139]    [Pg.241]   


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