Published May 15, 2007 | Version v1
Journal article

Metallic and nonmetallic shine in luster: An elastic ion backscattering study

  • 1. Departament Fisica Aplicada, Universitat Politecnica de Catalunya, Campus Baix Llobregat. EPSC. Av. Canal Olimpic, 08860 Castelldefels (Spain)
  • 2. GRMT, Departament Fisica, Universitat de Girona, Campus Montilivi, 17071 Girona (Spain)
  • 3. Centro de Micro-Analisis de Materiales, Universidad Autonoma de Madrid, Campus de Cantoblanco, 28049 Madrid (Spain)
  • 4. Departament di Fisica, Universita di Genova, e INFN via Dodecaneso 33, 16146 Genova (Italy)
  • 5. GRMT, Departament, Fisica, Universitat de Girona, Campus Montilivi, 17071 Girona (Spain)
  • 6. Departamento de Fisica Aplicada, C-XII, Universidad Autonoma de Madrid, Campus de Cantoblanco, 28049 Madrid (Spain)
  • 7. Departament Fisica i Enginyeria Nuclear, Universitat Politecnica de Catalunya, Campus Baix Llobregat. ESAB. Av. Canal Olimpic, 08860 Castelldefels (Spain)

Description

Luster is a metal glass nanocomposite layer first produced in the Middle East in early Islamic times (9th AD) made of metal copper or silver nanoparticles embedded in a silica-based glassy matrix. These nanoparticles are produced by ion exchange between Cu+ and Ag+ and alkaline ions from the glassy matrix and further growth in a reducing atmosphere. The most striking property of luster is its capability of reflecting light like a continuous metal layer and it was unexpectedly found to be linked to one single production parameter: the presence of lead in the glassy matrix composition. The purpose of this article is to describe the characteristics and differences of the nanoparticle layers developed on lead rich and lead free glasses. Copper luster layers obtained using the ancient recipes and methods are analyzed by means of elastic ion backscattering spectroscopy associated with other analytical techniques. The depth profile of the different elements is determined, showing that the luster layer formed in lead rich glasses is 5-6 times thinner and 3-4 times Cu richer. Therefore, the metal nanoparticles are more densely packed in the layer and this fact is related to its higher reflectivity. It is shown that lead influences the structure of the metal nanoparticle layer through the change of the precipitation kinetics

Additional details

Identifiers

Publishing Information

Journal Title
Journal of Applied Physics
Journal Volume
101
Journal Issue
10
Journal Page Range
p. 103518-103518.8
ISSN
0021-8979
CODEN
JAPIAU

Optional Information

Notes
(c) 2007 American Institute of Physics