VYKOUKAL, Vít, Jiří BURŠÍK, David A CULLEN, Jan VŘEŠŤÁL a Jiří PINKAS. Metal Nanoalloy Synthesis By Solvothermal Hot Injection Technique. In International Meeting on Nanoalloys 2018, Orléans, May 22-25, 2018, France. 2018.
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Základní údaje
Originální název Metal Nanoalloy Synthesis By Solvothermal Hot Injection Technique
Autoři VYKOUKAL, Vít, Jiří BURŠÍK, David A CULLEN, Jan VŘEŠŤÁL a Jiří PINKAS.
Vydání International Meeting on Nanoalloys 2018, Orléans, May 22-25, 2018, France, 2018.
Další údaje
Originální jazyk angličtina
Typ výsledku Konferenční abstrakt
Obor 10402 Inorganic and nuclear chemistry
Stát vydavatele Francie
Utajení není předmětem státního či obchodního tajemství
Organizační jednotka Přírodovědecká fakulta
Klíčová slova česky prekurzory kovů; nanočástice; tuhý roztok; Janus; stříbro; měď
Klíčová slova anglicky metal precursors; nanoparticles; solid solution; Janus; silver; copper
Změnil Změnil: prof. RNDr. Jiří Pinkas, Ph.D., učo 627. Změněno: 4. 1. 2019 11:44.
Anotace
The synthesis of nanoalloys is one integral part of nanoscience and development of efficient preparative methods is a challenging task due to their chemical, phase, and morphological variability. Nanoparticles of metal alloys exhibit many interesting properties, such as depression of melting point, plasmon resonance, catalytic activity and magnetic properties. Nanoalloys can be prepared by many approaches, but the solvothermal synthesis, specifically in oleylamine is highly advantageous. Hot injection technique should ensure homogeneous conditions for nanoparticle nucleation and growth. AgNi and AgCu nanoparticles were synthetized by injection of metal precursors oleylamine solution to a mixture of oleylamine and octadecene at 230 °C. After 10 minutes, the reaction mixture was cooled down to room temperature in a water bath. Nanoparticles were isolated, purified, dispersed in hexane and characterized. Size, shape, morphology, elemental distribution, optical and magnetic properties were described by using various techniques. Core/shell structure of AgNi, importance of used precursors to final morphology of AgCu and simple technique for Janus or solid solution synthesis were demonstrated. The results of this research have been acquired within the CEITEC 2020 (LQ1601) project with financial contribution made by the MEYS CR within special support paid from the National Program for Sustainability II funds and by the Czech Science Foundation (GA 17-15405S). CIISB research infrastructure project LM2015043 funded by MEYS CR is gratefully acknowledged for the financial support of the measurements at the CF X-ray Diffraction and Bio-SAXS and at the CF Cryo-electron Microscopy and Tomography CEITEC MU. STE M-EDS was carried out with the support of CEITEC Nano Research Infrastructure (ID LM2015041, MEYS CR, 2016–2019), CEITEC Brno University of Technology and was performed as part of a user project through Oak Ridge National Laboratory’s Center for Nanophase Materials Sciences, which is a U.S. Department of Energy (DOE) Office of Science user facility along with instrumentation provided by the DOE Office of Nuclear Energy, Fuel Cycle R&D Program, and the Nuclear Science User Facilities.
Návaznosti
GA17-15405S, projekt VaVNázev: Pokročilé experimentální a teoretické přístupy k fázovým diagramům nanoslitin se zahrnutím vlivu velikosti částic
Investor: Grantová agentura ČR, Pokročilé experimentální a teoretické přístupy k fázovým diagramům nanoslitin se zahrnutím vlivu velikosti částic
LM2015043, projekt VaVNázev: Česká infrastruktura pro integrativní strukturní biologii (Akronym: CIISB)
Investor: Ministerstvo školství, mládeže a tělovýchovy ČR, Czech Infrastructure for Integrative Structural Biology
LQ1601, projekt VaVNázev: CEITEC 2020 (Akronym: CEITEC2020)
Investor: Ministerstvo školství, mládeže a tělovýchovy ČR, CEITEC 2020
VytisknoutZobrazeno: 27. 4. 2024 00:56