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All of these material systems have to fulfil various common as well as specific requirements.
The wide-band gap GaN material systems have attracted much attention for their applications in optoelectronic devices [8].
Optical microscopy shows that all the material systems have well-defined multi-layered structure with controllable and tunable layer thickness.
Highly reactive integrated material systems have recently gained attention, as they promise a feasible tool for heterogeneous integration of micro electromechanical systems.
(Al, Ga, In) N material systems have been extensively investigated because of their potential applications in light-emitting diodes (LEDs), laser diodes, and photodetectors[1 6].
These new material systems have demonstrated superior mechanical performance and are able to perform additional functions, such as thermal management and energy amelioration.
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An analytical solution to the problem of one-dimensional high amplitude wave propagation in layered heterogeneous material systems has been developed, based on Floquet's theory of ODEs with periodic coefficients.
It should be noted for comparison that similar structures in other materials systems have achieved significantly higher Q-factors: ∼5 × 10 and ∼10 for silicon and GaAs, where the absorption coefficients are ∼10 4 and 1 cm–1, respectively.
Recently, the coexistence of both modes in one material system has also been reported [9 11].
The epoxy matrix of the material system had dispersed black-pigmented particles with flame-retarding properties.
Since then, this material system has drawn a lot of attention especially for infrared detection.
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