logo

Formation Kinematics of Plasma-Generated Silver Nanoparticles

PDF Publication Title:

Formation Kinematics of Plasma-Generated Silver Nanoparticles ( formation-kinematics-plasma-generated-silver-nanoparticles )

Previous Page View | Next Page View | Return to Search List

Text from PDF Page: 011

Nanomaterials 2020, 10, 555 11 of 12 11. Mahdieh, M.; Zolanvari, A.; Azimee, A.S. Green biosynthesis of silver nanoparticles by Spirulina platensis. Sci. Iran. 2012, 19, 926–929. [CrossRef] 12. Patel, V.; Berthold, D.; Puranik, P.; Gantar, M. Screening of cyanobacteria and microalgae for their ability to synthesize silver nanoparticles with antibacterial activity. Biotechnol. Rep. 2015, 5, 112–119. [CrossRef] [PubMed] 13. Shankar, S.S.; Rai, A.; Ahmad, A.; Sastry, M. Rapid synthesis of Au, Ag, and bimetallic Au core-Ag shell nanoparticles using Neem (Azadirachta indica) leaf broth. J. Colloid Interface Sci. 2004, 275, 496–502. [CrossRef] 14. Schneidewind, H.; Schüler, T.; Strelau, K.K.; Weber, K.; Cialla, D.; Diegel, M.; Mattheis, R.; Berger, A.; Möller, R.; Popp, J. The morphology of silver nanoparticles prepared by enzyme-induced reduction. Beilstein J. Nanotechnol. 2012, 3, 404–414. [CrossRef] 15. Saifuddin, N.; Wong, C.W.; Yasumira, A.A.N. Rapid biosynthesis of silver nanoparticles using culture supernatant of bacteria with microwave irradiation. E-J. Chem. 2009, 6, 61–70. [CrossRef] 16. Vahabi, K.; Mansoori, G.A.; Karimi, S. Biosynthesis of silver nanoparticles by fungus trichoderma reesei (a route for large-scale production of agnps). Insci. J. 2011, 65–79. [CrossRef] 17. Mariotti, D.; Patel, J.; Švrcˇek, V.; Maguire, P. Plasma-liquid interactions at atmospheric pressure for nanomaterials synthesis and surface engineering. Plasma Process. Polym. 2012, 9, 1074–1085. [CrossRef] 18. Richmonds, C.; Sankaran, R.M. Plasma-liquid electrochemistry: Rapid synthesis of colloidal metal nanoparticles by microplasma reduction of aqueous cations. Appl. Phys. Lett. 2008, 93. [CrossRef] 19. Deng, X.; Leys, C.; Vujosevic, D.; Vuksanovic, V.; Cvelbar, U.; Geyter, N. de; Morent, R.; Nikiforov, A. engineering of composite organosilicon thin films with embedded silver nanoparticles via atmospheric pressure plasma process for antibacterial activity. Plasma Process. Polym. 2014, 11, 921–930. [CrossRef] 20. Bellmann, M.; Ochs, C.; Harms, M.; Viöl, W. Plasma Nozzle. Patent: DE102016209097A1, CN108781498A EP3430864A1 WO2017157975A1, 25 May 2016. 21. Chidsey, I.L.; Crosley, D.R. Calculated rotational transition probabilities for the A−X system of OH. J. Quant. Spectrosc. Radiat. Transf. 1980, 23, 187–199. [CrossRef] 22. Peters, F.; Hünnekens, B.; Wieneke, S.; Militz, H.; Ohms, G.; Viöl, W. Comparison of three dielectric barrier discharges regarding their physical characteristics and influence on the adhesion properties on maple, high density fiberboards and wood plastic composite. J. Phys. D: Appl. Phys. 2017, 51, 159501. [CrossRef] 23. Hofmann, S.; van Gessel, A.F.H.; Verreycken, T.; Bruggeman, P. Power dissipation, gas temperatures and electron densities of cold atmospheric pressure helium and argon RF plasma jets. Plasma Sources Sci. Technol. 2011, 20, 065010. [CrossRef] 24. Schneider, C.A.; Rasband, W.S.; Eliceiri, K.W. NIH Image to ImageJ: 25 years of image analysis. Nat. Methods 2012, 9, 671–675. [CrossRef] [PubMed] 25. Scaiano, J.C.; Netto-Ferreira, J.C.; Alarcon, E.; Billone, P.; Alejo, C.J.B.; Crites, C.-O.L.; Decan, M.; Fasciani, C.; González-Béjar, M.; Hallett-Tapley, G.; et al. Tuning plasmon transitions and their applications in organic photochemistry. Pure Appl. Chem. 2011, 83, 913–930. [CrossRef] 26. Evanoff, D.D.; Chumanov, G. Synthesis and optical properties of silver nanoparticles and arrays. Chemphyschem 2005, 6, 1221–1231. [CrossRef] 27. Agnihotri, S.; Mukherji, S.; Mukherji, S. Size-controlled silver nanoparticles synthesized over the range 5–100 nm using the same protocol and their antibacterial efficacy. RSC Adv. 2014, 4, 3974–3983. [CrossRef] 28. Bastús, N.G.; Merkoçi, F.; Piella, J.; Puntes, V. Synthesis of highly monodisperse citrate-stabilized silver nanoparticles of up to 200 nm: Kinetic control and catalytic properties. Chem. Mater. 2014, 26, 2836–2846. [CrossRef] 29. Creighton, J.A.; Eadon, D.G. Ultraviolet–visible absorption spectra of the colloidal metallic elements. J. Chem. Soc. Faraday Trans. 1991, 87, 3881–3891. [CrossRef] 30. Noguez, C. Surface Plasmons on metal nanoparticles: The influence of shape and physical environment. J. Phys. Chem. C 2007, 111, 3806–3819. [CrossRef] 31. Zhang, Q.; Ge, J.; Pham, T.; Goebl, J.; Hu, Y.; Lu, Z.; Yin, Y. Reconstruction of silver nanoplates by UV irradiation: Tailored optical properties and enhanced stability. Angew. Chem. Int. Ed. 2009, 48, 3516–3519. [CrossRef] 32. Tzhayik, O.; Sawant, P.; Efrima, S.; Kovalev, E.; Klug, J.T. Xanthate capping of silver, copper, and gold colloids. Langmuir 2002, 18, 3364–3369. [CrossRef]

PDF Image | Formation Kinematics of Plasma-Generated Silver Nanoparticles

formation-kinematics-plasma-generated-silver-nanoparticles-011

PDF Search Title:

Formation Kinematics of Plasma-Generated Silver Nanoparticles

Original File Name Searched:

nanomaterials-10-00555-v2.pdf

DIY PDF Search: Google It | Yahoo | Bing

Turbine and System Plans CAD CAM: Special for this month, any plans are $10,000 for complete Cad/Cam blueprints. License is for one build. Try before you buy a production license. More Info

Waste Heat Power Technology: Organic Rankine Cycle uses waste heat to make electricity, shaft horsepower and cooling. More Info

All Turbine and System Products: Infinity Turbine ORD systems, turbine generator sets, build plans and more to use your waste heat from 30C to 100C. More Info

CO2 Phase Change Demonstrator: CO2 goes supercritical at 30 C. This is a experimental platform which you can use to demonstrate phase change with low heat. Includes integration area for small CO2 turbine, static generator, and more. This can also be used for a GTL Gas to Liquids experimental platform. More Info

Introducing the Infinity Turbine Products Infinity Turbine develops and builds systems for making power from waste heat. It also is working on innovative strategies for storing, making, and deploying energy. More Info

Need Strategy? Use our Consulting and analyst services Infinity Turbine LLC is pleased to announce its consulting and analyst services. We have worked in the renewable energy industry as a researcher, developing sales and markets, along with may inventions and innovations. More Info

Made in USA with Global Energy Millennial Web Engine These pages were made with the Global Energy Web PDF Engine using Filemaker (Claris) software.

Infinity Turbine Developing Spinning Disc Reactor SDR or Spinning Disc Reactors reduce processing time for liquid production of Silver Nanoparticles.

CONTACT TEL: 608-238-6001 Email: greg@infinityturbine.com | RSS | AMP