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Theoreticians in Materials Science are living an exciting time. Advances in laboratory technologies are allowing experimentalists to provide high quality data regarding the structure-property relationships of novel materials. Unexpected achievements as the synthesis of nanostructures whose properties have been predicted several years or decades ago, as in case of the so called graphynes, and the re-discovery of special properties of known materials, as in the case of perovskites, are now becoming reality. Hierarchical carbon nanostructured materials, metal-organic-frameworks (MOFs), organic/inorganic composites, self-assembled structures, two-dimensional materials, surfaces, interfaces, etc., are all examples of actual materials and phenomena of great potential for applications in science and technology. Architectured shapes of known materials, like origami and kirigami nanostructures or porous solids made of known coiled materials, are providing new ideas to the development of new applications. The aim of this symposium is to address theoretical and computational efforts to provide advances in the investigation of properties of known promising materials, and to present predictions of new materials. New methods, protocols and theories regarding the discovery of materials and prediction of their properties are welcome. Theoretical works based on or dealing with experimental data are encouraged to be submitted to this symposium. Use of atomistic, quantum or classical molecular modeling and dynamics, coarse-grained, mesoscale, and continuum methods and approaches, as well as multiscale strategies to solve problems and describe materials properties, are all welcome. This symposium is dedicated to bring scientists together to examine the current understanding, state-of-the-art, and future trends of these exciting fields.

征稿信息

重要日期

2016-06-15
摘要截稿日期

征稿范围

  • Classical reactive and non-reactive force-fields for Molecular Dynamics

  • New developments in Density Functional Theory DFT and Generalized DFT

  • New developments for electronic and optical properties, on top of DFT or Hartree-Fock (TD-DFT, GW, Bethe-Salpeter)

  • Large scale ab initio simulations

  • Multiscale modeling

  • Organic or hybrid organic/inorganic nano-materials

  • Energy harvesting or conversion

  • Nanostructured materials, including self-assembly and design

  • Surfaces, interfaces, catalysis, sensors, magnetism, bio-nano-materials, etc.

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重要日期
  • 会议日期

    09月25日

    2016

    09月29日

    2016

  • 06月15日 2016

    摘要截稿日期

  • 09月29日 2016

    注册截止日期

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