Sopoušek Jiří, Zobač Ondřej, Buršík Jiří, Roupcová Pavla, Vykoukal Vít, Brož Pavel, Pinkas Jiří, Vřešt'ál Jan
Department of Chemistry, Faculty of Sciences, Masaryk University, Kotlářská 2, 611 37 Brno, Czech Republic.
Phys Chem Chem Phys. 2015 Nov 14;17(42):28277-85. doi: 10.1039/c5cp00198f. Epub 2015 May 1.
Solvothermal synthesis was used for Ag-Cu nanoparticle (NP) preparation from metallo-organic precursors. The detailed NP characterization was performed to obtain information about nanoparticle microstructure and both phase and chemical compositions. The resulting nanoparticles exhibited chemical composition inside a FCC_Ag + FCC_Cu two-phase region. The microstructure study was performed by various methods of electron microscopy including high-resolution transmission electron microscopy (HRTEM) at an atomic scale. The HRTEM and X-ray diffraction studies showed that the prepared nanoparticles form the face centred cubic (FCC) crystal lattice where the silver atoms are randomly mixed with copper. The CALPHAD approach was used for predicting the phase diagram of the Ag-Cu system in both macro- and nano-scales. The predicted spinodal decomposition of the metastable Ag-Cu nanoparticles was experimentally induced by heating on an X-ray powder diffractometer (HT XRD). The nucleation of the Cu-rich phase was detected and its growth was studied. Changes in the Ag-rich phase were observed in situ by X-ray diffraction under vacuum. The heat treatment was conducted at different maximum temperatures up to 450 °C and the resulting particle product was analysed. The experiments were complemented by differential scanning calorimetry (DSC) measurements up to liquidus temperature. The start temperatures of the spinodal phase transformation and particle aggregation were evaluated.
采用溶剂热合成法从金属有机前驱体制备银铜纳米颗粒(NP)。对NP进行了详细表征,以获取有关纳米颗粒微观结构以及相组成和化学成分的信息。所得纳米颗粒在面心立方(FCC)_Ag + FCC_Cu两相区域内呈现出化学成分。通过包括原子尺度的高分辨率透射电子显微镜(HRTEM)在内的各种电子显微镜方法进行微观结构研究。HRTEM和X射线衍射研究表明,所制备的纳米颗粒形成面心立方(FCC)晶格,其中银原子与铜随机混合。采用CALPHAD方法预测宏观和纳米尺度下Ag-Cu系统的相图。通过在X射线粉末衍射仪(HT XRD)上加热,实验诱导了亚稳Ag-Cu纳米颗粒的预测旋节线分解。检测到富铜相的形核并研究了其生长。在真空下通过X射线衍射原位观察富银相的变化。在高达450°C的不同最高温度下进行热处理,并对所得颗粒产物进行分析。通过差示扫描量热法(DSC)测量直至液相线温度对实验进行补充。评估了旋节线相变和颗粒聚集的起始温度。