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Hydrothermal and microwave heating methods are commonly utilized for the synthesis of g-C3N4 QDs as the bottom-up approach [89, 90].
The impacts of activating conditions, such as carbonization temperature, retention time and impregnation ratio were thoroughly studied and compared between conventional and microwave heating methods.
Nanocrystalline ZnO was prepared via reflux and microwave heating methods involving polyethylene glycol (PEG 300), polyvinylpyrrolidone (PVP) and cetyltrimethylammonium bromide (CTAB) capping agents.
Magnetic nanoparticles can be synthesized through a multitude of methods including alkaline solution precipitation, thermal decomposition, microwave heating methods, sonochemical techniques, spray pyrolysis, and laser pyrolysis to name a few [1, 4, 6, 7].
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The catalyst was also used in conventional reflux-heating system to demonstrate the efficiency of microwave heating method.
In summary, we have prepared relatively monodisperse CdSe QDs through the microwave heating method.
Gerbec and co-workers studied microwave heating method and successfully prepared InGaP, InP, and CdSe nanoparticles [13].
The cobalt ferrite nanoparticles synthesized by microwave heating method were applied during photo-Fenton process.
The results indicated that microwave heating method can significantly reduce the synthesis time of MCM-41 to 40 min.
This paper reports a microwave heating method for effective synthesis of supported sorbents and catalysts.
The advantages of the hybrid microwave heating method are discussed and compared to the conventional and direct microwave heating processes.
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