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Tin, as a promising anode material, receives great attentions because of its high theoretic capacity.
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In the development of supercapacitors, nanostructured electrode materials have received great interests as they exhibit higher specific capacitance and rate capability compared to traditional bulk materials.
Recently, one-dimensional oxide semiconductor materials have received great attention because of their potential applications [3, 4].
Magnesium alloys as biodegradable materials have received great attention for orthopedic application as a result of their good biocompatibility, bioactivity, and mechanical properties.
In the recent times, pseudocapacitive electrode materials have received great attention due to their considerable capability in storing ions at relatively fast charging rates.
Carbon nanotubes (CNTs), an important group of nanoscale materials, have received great attention in different fields since their discovery in 1991 by Iijima [1].
Nanostructured materials have received great interest due to their fascinating physical, optical, electrical, and thermoelectric properties as well as their potential applications in nanodevices [1 4].
1D materials have received great attention because of their much potential for fundamental studies of the roles of dimensionality and size on their properties, as well as for their applications in nano-devices [18].
Conducting diamond thin film is a new electrode material that has received great attention recently because it possesses several technologically important characteristics such as an inert surface with low adsorption properties, remarkable corrosion stability, even in strong acidic media, and an extremely wide potential window in aqueous and non-aqueous electrolytes.
Microarray based material development has received great attention.
Computational design of materials processes has received great interests during the past few decades.
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