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The relationship between ordered intermetallic nanoparticle synthesis and the bulk phase diagram.

机译:有序金属间纳米粒子合成与体相图之间的关系。

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摘要

In this thesis, a surfactant-free synthesis of binary and ternary metal nanoparticles via co-reduction of metal chloride precursors is used to investigate the relationship between the bulk phase diagram and the formation of ordered intermetallic structures. The majority of the synthesized phases are binary materials of the formula Pt-M (M = Sn, Sb, In, Bi), because of their propensity to form single-phase regions with very narrow phase widths, known as "line phases". These line phases are thermodynamically stable according to the bulk phase diagram; however, the relationship between bulk stability and stability in the nanoparticle regime - and the implications for nanoparticle growth and ordering behavior - have not been fully explored. The 1:1 Pt-Sn phase (PtSn) forms ordered intermetallic nanoparticles with small domain sizes (4.3 nm) at room temperature, without any thermal annealing required. Pt3Sn similarly orders at low temperature (200 oC), in contrast to the three Pt-rich line phases, all of which require higher annealing temperatures to form the intermetallic phase. Other Pt-M phases show varying degrees of ordering, but none are observed to have the same low-temperature ordering as the Pt-rich Pt-Sn phases. This behavior is extremely rare, with only one other phase to our knowledge (Pt-Bi) forming the intermetallic without annealing, and only under specific conditions. It is possible to make qualitative statements concerning which phases should easily order and form phase-pure products; however, in order to more quantitatively predict these patterns, a multivariate analysis utilizing many physical properties (e.g., melting point, whether a phase melts congruently or incongruently, crystal structure, etc) was conducted. Using principal components analysis, partial least squares regression, and logistic regression techniques, a model was constructed to determine which properties would be most predictive of phases that were able to be synthesized as pure ordered intermetallics.
机译:本文通过共还原金属氯化物前驱体,无表面活性剂的合成二元和三元金属纳米粒子,用于研究体相图与有序金属间结构的形成之间的关系。大部分合成相是式Pt-M的二元材料(M = Sn,Sb,In,Bi),因为它们倾向于形成具有非常窄的相宽的单相区域,称为“线相”。根据体相图,这些线相在热力学上是稳定的;然而,尚未充分研究纳米颗粒状态下的体积稳定性和稳定性之间的关系以及对纳米颗粒生长和有序行为的影响。 1:1的Pt-Sn相(PtSn)在室温下形成具有小畴尺寸(4.3 nm)的有序金属间纳米粒子,无需任何热退火。与三个富含Pt的线相相反,Pt3Sn在低温(200 oC)时的阶数相似,所有这三个相均需要较高的退火温度才能形成金属间相。其他Pt-M相显示出不同程度的有序性,但没有观察到低温富Pt-Sn相具有相同的低温有序性。这种行为极为罕见,据我们所知,只有另一相(Pt-Bi)形成金属间化合物而没有退火,并且仅在特定条件下形成。可以定性说明哪些相应该容易订购并形成纯相产品;然而,为了更定量地预测这些模式,进行了利用许多物理性质(例如,熔点,相是否一致地熔融或不一致地熔融,晶体结构等)的多变量分析。使用主成分分析,偏最小二乘回归和逻辑回归技术,构建了一个模型,以确定哪些性质最能预测能够合成为纯有序金属间化合物的相。

著录项

  • 作者

    DeSario, Douglas York.;

  • 作者单位

    Cornell University.;

  • 授予单位 Cornell University.;
  • 学科 Inorganic chemistry.;Nanotechnology.;Materials science.;Analytical chemistry.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 194 p.
  • 总页数 194
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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