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Capturing the evolving structure of materials in functional devices under a host of varying thermodynamic potentials and environments, with nanoscale resolutions and in real-time, remains of one of the most actively pursued goals of structural imaging [1].
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Results discussed were noteworthy for exploring these phosphor materials in multi-functional applications such as optoelectronics, forensic and photocatalysis.
The aim of this chapter is to discuss how nanoparticles are made into a series of new products for applications in engineering materials, functional materials, and coatings.
These materials are based on dynamic hybrid materials in which the functional self-organized macrocycles are reversibly connected with the inorganic mesoporous silica through hydrophobic non-covalent interactions.
In this paper, we design a general strategy to fabricate nanoscale cavity in functional materials.
In recent years, charge transfer properties of DNA have attracted much attention among physicists, chemists and scientists in materials to exploit DNA in functional nanoelectronic devices [4 7].
Given the diversity of properties in functional materials and their applications in physics, the multiferroic model is investigated.
The aim of this review is to provide a critical overview of the latest developments in functional materials and nanoscale device architectures that can facilitate controlled reagent delivery.
Metal ions embedded in a specific ligand field offer diverse thermodynamic, kinetic, chemical, physical and structural properties that make these systems promising candidates for active components in functional materials.
The main tools for the assessment of the performance of these diagnostics are the neutronics calculations by using specialised codes and the information accumulated during the last decades on the radiation effects in functional materials, components and diagnostics for ITER.
There is plenty of room for halogen bonding in functional materials design, and the future is wide open.
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