Electrum, the Gold–Silver Alloy, from the Bulk Scale to the Nanoscale: Synthesis, Properties, and Segregation Rules

材料科学 液相线 合金 相图 双金属片 索里达 纳米颗粒 纳米尺度 化学物理 表面能 离散偶极子近似 贵金属 相(物质) 纳米技术 偶极子 热力学 金属 冶金 化学 复合材料 物理 有机化学
作者
Grégory Guisbiers,Rubén Mendoza‐Cruz,Lourdes Bazán-Díaz,J. Jesús Velázquez‐Salazar,Rafael Mendoza,José Antonio Robledo-Torres,José Luis Rodríguez‐López,J.M. Montejano‐Carrizales,Robert L. Whetten,Miguel José‐Yacamán
出处
期刊:ACS Nano [American Chemical Society]
卷期号:10 (1): 188-198 被引量:179
标识
DOI:10.1021/acsnano.5b05755
摘要

The alloy Au–Ag system is an important noble bimetallic phase, both historically (as “Electrum”) and now especially in nanotechnology, as it is applied in catalysis and nanomedicine. To comprehend the structural characteristics and the thermodynamic stability of this alloy, a knowledge of its phase diagram is required that considers explicitly its size and shape (morphology) dependence. However, as the experimental determination remains quite challenging at the nanoscale, theoretical guidance can provide significant advantages. Using a regular solution model within a nanothermodynamic approach to evaluate the size effect on all the parameters (melting temperature, melting enthalpy, and interaction parameters in both phases), the nanophase diagram is predicted. Besides an overall shift downward, there is a “tilting” effect on the solidus–liquidus curves for some particular shapes exposing the (100) and (110) facets (cube, rhombic dodecahedron, and cuboctahedron). The segregation calculation reveals the preferential presence of silver at the surface for all the polyhedral shapes considered, in excellent agreement with the latest transmission electron microscopy observations and energy dispersive spectroscopy analysis. By reviewing the nature of the surface segregated element of different bimetallic nanoalloys, two surface segregation rules, based on the melting temperatures and surface energies, are deduced. Finally, the optical properties of Au–Ag nanoparticles, calculated within the discrete dipole approximation, show the control that can be achieved in the tuning of the local surface plasmon resonance, depending of the alloy content, the chemical ordering, the morphology, the size of the nanoparticle, and the nature of the surrounding environment.
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