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In this method, a minute level (~ 150 ppm) of water is inserted into the growth ambient to increase catalyst activity.
Increasing hydrogen pressure from 0.03 to 0.10 MPa (Table 1, entry 2 4) did not increase catalyst activity obviously.
Engineering control through understanding is about using knowledge-based approaches to increase catalyst discovery and optimisation by combining experimental and theoretical approaches.
The results highlight us a new strategy to increase catalyst activity in the future catalyst design by alternating the σ-donor property and flexibility of NHC ligands.
To increase catalyst lifetime and hence, carbon nanotube length, it is necessary to know how the local environment changes as the catalyst moves through the flame.
Decreasing the particle size, ie matching the size/thickness of porous catalyst particles/coatings to their intrinsic catalytic activity and the applied current density allows to diminish the Thiele modulus and to increase catalyst utilization to the highest possible degree.
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It also increased catalyst deactivation.
The total active surface area increases with increasing catalyst dosage.
Meanwhile, all single aromatic hydrocarbons went up gradually with the increasing catalyst with γ-alumina.
The reaction rate and C5 + selectivity increased with increasing catalyst pore diameters.
As expected, the activity decreased with increasing catalyst particle size.
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