Colloidal Synthesis and Structural Control of PtSn Bimetallic Nanoparticles

PtSn bimetallic nanoparticles with different particle sizes (1–9 nm), metal compositions (Sn content of 10–80 mol %), and organic capping agents (e.g., amine, thiol, carboxylic acid and polymer) were synthesized by colloidal chemistry methods. Transmission electron microscopy (TEM) measurements show...

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Veröffentlicht in:Langmuir 2011-09, Vol.27 (17), p.11052-11061
Hauptverfasser: Wang, Xiaodong, Stöver, Jörg, Zielasek, Volkmar, Altmann, Lena, Thiel, Karsten, Al-Shamery, Katharina, Bäumer, Marcus, Borchert, Holger, Parisi, Jürgen, Kolny-Olesiak, Joanna
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Sprache:eng
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Zusammenfassung:PtSn bimetallic nanoparticles with different particle sizes (1–9 nm), metal compositions (Sn content of 10–80 mol %), and organic capping agents (e.g., amine, thiol, carboxylic acid and polymer) were synthesized by colloidal chemistry methods. Transmission electron microscopy (TEM) measurements show that, depending on the particle size, the as-prepared bimetallic nanocrystals have quasi-spherical or faceted shapes. Energy-dispersive X-ray (EDX) analyses indicate that for all samples the signals of both Pt and Sn can be detected from single nanoparticles, confirming that the products are actually bimetallic but not only a physical mixture of pure Pt and Sn metal nanoparticles. X-ray diffraction (XRD) measurements were also conducted on the bimetallic particle systems. When compared with the diffraction patterns of monometallic Pt nanoparticles, the bimetallic samples show distinct shifts of the Bragg reflections to lower degrees, which gives clear proof of the alloying of Pt with Sn. However, a quantitative analysis of the lattice parameter shifts indicates that only part of the Sn atoms are incorporated into the alloy nanocrystals. This is consistent with X-ray photoelectron spectroscopy (XPS) measurements that reveal the segregation of Sn at the surfaces of the nanocrystals. Moreover, short PtSn bimetallic nanowires were synthesized by a seed-mediated growth method with amine-capped bimetallic particles as precursors. The resulting nanowires have an average width of 2.3 nm and lengths ranging from 5 to 20 nm.
ISSN:0743-7463
1520-5827
DOI:10.1021/la201829y