We fabricated high-mesa waveguides consisting of Al 0:1 Ga 0:9 N cladding layers and an AlN/GaN multiple quantum well core layer using inductively coupled plasma dry etching. Suitable conditions for vertically abrupt profiles were determined with an excellent reproducibility by optimizing the ICP power, bias power, gas pressure, and gas component. The etching selectivity of the samples to the SiO 2 mask was 10, which is larger than previously reported values. Light propagation at 1.55 mm in the waveguides was also confirmed.
Laminated composites are increasingly used in aeronautics and the wind energy industry, as well as in the automotive industry. In these applications, the construction and processing need to fulfill the highest requirements regarding weight and mechanical properties. Environmental issues, like fuel consumption and CO2-footprint, set new challenges in producing lightweight parts that meet the highly monitored standards for these branches. In the automotive industry, one main aspect of construction is the impact behavior of structural parts. To verify the quality of parts made from composite materials with little effort, cost and time, non-destructive test methods are increasingly used. A highly recommended non-destructive testing method is thermography analysis. In this work, a prototype for a car’s base plate was produced by using vacuum infusion. For research work, testing specimens were produced with the same multi-layer build up as the prototypes. These specimens were charged with defined loads in impact tests to simulate the effect of stone chips. Afterwards, the impacted specimens were investigated with thermography analysis. The research results in that work will help to understand the possible fields of application and the usage of thermography analysis as the first quick and economic failure detection method for automotive parts.
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