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Transition metal oxide supports affect the hydrogen production activity and selectivity significantly.
There are many factors that could affect the hydrogen sensing performance of the Al- and V-doped TiO2 nanofilms.
Particle distribution and residence time distribution (RTD) in supercritical water fluidized bed reactor (SCWFBR) greatly affect the hydrogen yield through determining the two phase mixing and reaction time.
The increased materials density did not affect the hydrogen absorption and desorption kinetics, which is important in order to benefit from the improved volumetric capacity.
The results clearly indicated that the changes at the N3/C4 position of pyrimidine ring could affect the hydrogen bonds strength and number between N3/C4 and the Lys101 residue which are indispensable for anti-HIV-1 RT activity.
Conclusion: The results provided information about the factors that affect the hydrogen peroxide production and about the most favorable conditions with which to obtain the highest biomass in the shortest possible time.
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It should be noted that, in the Rho → bathorhodopsin conversion, changes in hydrogen-bonding interactions of the retinal are small, as retinal isomerization does not affect the hydrogen-bonding strength of the RSB.
In favor of this latter possibility, it was previously shown that the structure of the guanidino moiety can significantly affect the hydrogen-bonding network near the heme active site, which subsequently controls proton transfer events in NOS and tunes its oxidative chemistry.
The amount of added transition metal affects the hydrogen storage capacity.
Nanotubular geometry, polymorph, element doping, and testing temperature affected the hydrogen sensing properties of the nanofilm sensors.
Na2HPO4 affected the hydrogen production in a concentration-dependent way with 600 mg/l the optimal concentration.
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