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As shown in this study by modelling impaired diffusivity, more than 100-fold lowered diffusion coefficients were required to maintain spatial anisotropies during apoptosis execution in the reference scenario.
First, the microdomain does not require a lowered diffusion coefficient, but is robust to changes in diffusion constants of cAMP and PKA catalytic subunit (Fig. 7).
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For example, incorporation of a secondary mesoporosity into a microporous H-β-zeolite to create a hierarchical solid acid significantly increased catalytic activity by lowering diffusion barriers [85].
These mesoporous zeolites are more active isomerization catalysts than the ordinary zeolites of a similar composition, this being attributed to lower diffusion limitations, particularly in the case of longer paraffins and narrow pore zeolites.
In the case of impact of deionized water on the studied samples, the water structure can be considered as ice-like due to lower diffusion of solute through internal structure of material.
Superior CBRAM characteristics such as high switching yield of 88%, lower average RESET current of approximately 328 μA, and acceptable resistance ratio of 9.6 are obtained for the 0.4-μm devices with a 2-nm-thick Al2O3 film under low voltage of ±2 V, which is due to lower diffusion of Cu ions into the Al2O3 films under external bias.
A faster diffusion rate leads to more frequent meetings between H and CO, but per encounter the time to react is shorter with respect to lower diffusion rates.
First, the concentration of gases can be expected to be higher in large than in small conduits due to lower diffusion efficiency.
Therefore, lower diffusion coefficients indicate difficulties for molecules to diffuse within the surrounding conditions, matching the present results.
The lower diffusion activation energy is related to the higher diffusion coefficient.
This could be related to the reduced molecular mobility and lower diffusion coefficient of this system.
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