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Over the last decade, much interest has been developed in biopolymer based materials due to their biocompatible, biodegradable, non-toxic and non-allergenic nature.
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Nano-materials have been widely applied in cement-based materials due to its excellent performance.
The deterioration of iron-based materials due to corrosion is a well-known problem.
However, little work has been done involving the imide to nitride reaction of lithium-based materials due to their high temperature range.
Specially, wool-based materials due to its protein content are prone to attack of moth and other insects.
In addition, the 5D0 → 7F1 transition can be used as a reference to compare luminescent intensities of different Eu3+-based materials due to its magnetic dipole nature.
However, it is also known that modification via chemical route can disrupt the electronic paths in carbon-based materials due to the opening of the conjugated structure leading to the formation of holes on the surface [45].
Nanotitanium dioxide has been used in several studies with cement-based materials due to its functionalities, such as removal of volatile organic compounds and self-cleaning, which are commonly known as photocatalytic properties (Lee and Kurtis 2010; Chen et al. 2012).
The weld metals had higher hardness and tensile strength than the base material due to grain refinement which caused failures away from the joint interface during tensile testing.
The term of heat, which is dissipated in the base material due to heat conduction is often not contemplated, even if this term can reach very high values.
At all temperatures, the bead exhibits superior tensile resistance than the base material due to a homogenous reprecipitation of fine aluminum nitrides, AlN, but creeps faster at 900 °C, because of a finer-grained microstructure scarcely undergoing secondary recrystallization.
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