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The g values were observed to decrease with increasing arm numbers, indicating more compact molecular structure for SPCLs with higher arm numbers, while no such effect was observed for arm length variation.
Furthermore, the adsorption capacity of MWCNT on the basis of surface area was more advantageous than that of the other adsorbents because MWCNT has a much more compact molecular arrangement.
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Although quantitative comparison with theories was somewhat restricted due to the slightly high index of polydispersity (MW/Mn = 1.8−2.2) of the BPEI fractions, it was found that the structure of BPEI seemed to be randomly branched and became more compact with increasing molecular weight.
With increasing particle concentration, we observe a more compact structure for the high molecular weight PEO and no signature of a percolating network in the case of the low molecular PEO.
Larger, extended ions will experience more collisions with the buffer gas and, as a result, will take longer to traverse the drift tube in comparison with smaller, more compact ions of the same molecular mass which will undergo fewer collisions with the buffer gas and hence will have a greater mobility and a shorter drift time.
The lower molecular weight and more compact (G0 or comb-branched) PPA generally performed better than those with a high molecular weight.
This algorithm was further customized for biological pathways to for example recognize and de-emphasize ubiquitously present small molecules such as ATP, nest subcellular compartments to represent biological containment relationships, and tile members of a molecular complex for more compact drawings.
We infer from our findings that more compact PR+:siRNA nanostructures arising from lower molecular weight, rigid rod-like PR+ polymer cores produce improved silencing efficiency relative to higher molecular weight, more flexible PR+ vectors of similar effective charge.
The molecular basis of the more compact state of the Xi remains to be elucidated but is likely to depend on multiple aspects of its chromatin content and associated proteins and nucleic acids.
The molecular structure of DCE is more compact and regular than the commercial 3,4-epoxycyclohexylmethyl-3,4- 3,4-epoxycyclohexylmethyl-3,4- 3,4-epoxycyclohexylmethyl-3,4-mall-/widepoxycyclohexanecarboxylate
The reason may be that in 12% gel, the smaller proteins tend to be more diffuse resulting in a broader band, whereas higher molecular weight proteins tend to be more compact in migration.
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