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Optimum conditions for the production of ethyl esters were the following: mild temperature at 56.7 °C, reaction time in 80 min, molar ratio at 9 1 and catalyst concentration of 1.3 M.
It was found that the low and mild temperature at 500 ∼ 550 °C would bring the dynamic equilibrium between the rate of CH4 decomposition and the rate of carbon diffusion over Ni catalyst for continuous precipitation of CNTs in the micro-fluidized bed condition.
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In this sense, we have chosen the decomposition of an organometallic precursor in a polyalcohol medium at mild temperature as the method to synthesize birnessite-type nanostructured MnO2.
Both cycles proceed uncatalyzed at mild temperature and neutral pH, with one cycle demonstrating multiple turnover with sequential feeding of source materials (glyoxylate and H2O2).
Hemicelluloses from sugarcane bagasse were subjected to microwave-assisted acid hydrolysis at mild temperature to produce xylooligosaccharides (XOS).
The Ag nanoparticle arrays on copper substrate are firstly prepared by a displacement reaction at mild temperature of 303K.
Biobased short aliphatic diols and diethyl carboxylates were enzymatically (co polymerized in solution at mild temperature using the immobilized form of Candida antarctica lipase B (CALB) as biocatalyst.
Nanoflake-based flower-like and hollow microsphere-like hydrated tungsten oxide architectures were selectively synthesized by acidic precipitation of sodium tungstate solution at mild temperature.
The catalytic effect of calcium during air gasification of carbonaceous materials at mild temperature is maximum when the calcium is ion exchanged on their surface.
The electrolytic carbon (E-carbon) derived from greenhouse gas CO2 in molten carbonates at mild temperature possesses high electrical conductivity and suitable specific surface area.
This gas-assisted technique is a completely solvent-free process, operates at mild temperature conditions (<313 K), and is particularly promising for the absorption of thermo-degradable molecules within PLGA membranes without affecting their morphology at macro- and micro-scale.
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CEO of Professional Science Editing for Scientists @ prosciediting.com