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First, the ionomer to oxide supported cathode catalyst ratio has been studied and optimized.
Main factors have been studied and optimized by means of a multifactor categorical design.
In this paper, a passive microfluidic device for continuous real time blood plasma separation has been studied and optimized.
The effect of citric acid to metal ion ratio in this synthesis has been studied and optimized.
Size distribution, surface morphology, and total microparticle yield have been studied and optimized as a function of the copolymer composition.
The oxidative stabilization process of gel-spun carbon nanotube (CNT /polyacrylonitrile (PAN) composite fibers have been studied and optimized.
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The effective parameters on the extraction efficiency were studied and optimized utilizing two different optimization methods: one variable at a time (OVAT) and box-behnken design (BBD).
The effective parameters on the extraction recovery were studied and optimized utilizing two decent optimization methods; factorial design and central composite design (CCD).
The effective parameters on the supramolecular solvent microextraction efficiency were studied and optimized using two different optimization methods: one variable at a time and face centered design.
Five factors were studied and optimized.
Different electrode configurations were studied and optimized.
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