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Barrier materials are desirable for efficient ZnO-based optoelectronic devices.
Opaque barrier materials are primarily aluminum metallized coated polymer films.
Since the commonly used barrier materials are nobler than Al, the Al interface in contact with the barrier can become prone to galvanic corrosion in the wet CMP environment.
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Active regions with various barrier materials were incorporated into edge emitter samples to evaluate their performance.
Different barrier materials were used to study the effect of different barrier hardnesses on the deformation, barrier homogeneity, matrix resistivity and critical current density.
This shows that the concentration of silicic acid in the porewaters reached the solubility of amorphous silica quickly, so that the detrimental effects of the engineered barrier materials were efficiently reduced.
An improved understanding of the behavior of pertechnetate in proposed barrier materials is also necessary to evaluate the potential of different design specifications to mitigate or remove the potential hazard.
Two barrier materials were evaluated to separate the sample and capture chambers of the cyanide microdiffusion apparatus: (1) a silicone septa with stainless steel tubing and (2) a 10 micron porous PE frit. Figure 3 shows the calibration curves achieved with each barrier material.
The electrical properties for the new RuTiN barrier material were investigated and compared with those for the TiN barrier.
However, a sound understanding of the gas transport properties of the barrier material is often considered a necessary part of safety case development for a geological disposal facility.
The performance evaluation of the silica-sol barrier material was carried out mainly in terms of sheet resistance measurements, secondary ion mass spectrometry (SIMS) analysis and scanning electron microscope (SEM) measurements.
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