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Rapid thermal oxidation

V. Petrova-Koch, T. Muschik, A. Kux, B. K. Meyer, and F. Koch, Rapid-thermal-oxidized porous Si— The superior photoluminescent Si, Appl. Phys. Lett. 61(8), 943, 1992. [Pg.455]

Rapid thermal oxidation (800C) Nanoparticles (80-120 nm diameter, 5 nm APD) Phosphate buffered saline 3 h half-life Honetal. (2012)... [Pg.18]

Petrova-Koch V, Muschik T, Kux A et al (1992) Rapid-thermal-oxidized porous Si-the superior photoluminescent Si. Appl Phys Lett 61 943-945 Porter LA, Choi HC, Ribbe AE et al (2002) Controlled electroless deposition of noble metal nanoparticle films on germanium surfaces. Nano Lett 2 1067-1071 Rabinal MK, Mulimani BG (2007) Transport properties of molecularly stabilized porous silicon schottky junctions. New J Phys 9 440-448... [Pg.367]

Wadayama T, Arigane T, Hayamizu K, Hatta A (2002) Unusual photoluminescence decay of porous silicon prepared by rapid thermal oxidation and quenching in liquid nitrogen. Mater Trans... [Pg.425]

Most thermal analysis methods for studying polymeric stabilizer systems are based on the antioxidant s ability to delay the oxidation process. Usually a sample is heated to a specified temperature and the induction time, or period of time before the onset of rapid thermal oxidation, is determined [see discussion of oxidative induction time (OIT) in Section 3.4.2 of this chapter]. The end of the induction period is marked by an abrupt increase in the sample s temperature, evolved heat, or mass and can be detected by DTA, DSC or TGA, respectively (Bair 1997). The effect of antioxidant structure and its concentration on prolonging a sample s induction period can be used to determine the most effective antioxidant system for a polymer such as polyethylene. Extensive data have shown that thermal information such as this can be used successfully to estimate the lifetime of polyethylene at processing temperatures (Bair 1997). [Pg.297]


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