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The conductivity behavior of the nanocomposite material was efficiently described using a percolation model: the conductivity can be tuned by changing the NMG content and the latex size.
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For higher acetyl contents, the hydrophobicity of the material is efficiently enhanced and no more freezing water is adsorbed.
The advantages of both SVO and CFx materials were efficiently utilized.
This shows that the concentration of silicic acid in the porewaters reached the solubility of amorphous silica quickly, so that the detrimental effects of the engineered barrier materials were efficiently reduced.
In addition, using a difunctional TAD of 4,4′- 4,4′-diphenylmethylene -bis- 1,2,4-triazoline-3,5-dione) as a model crosslinking agent, network materials were efficiently produced by crosslinking ROMP derived Poly-1 from TAD based Alder-ene chemistry.
All of the [C2mim][OAc] pretreated switchgrass at all loading levels generated a material that was efficiently hydrolyzed using a commercial cellulase (CTec2) and hemicellulase (HTec2) cocktail from Novozymes, with total reducing sugar saccharification yields of more than 96% for all of the biomass loadings achieved within 24 h of hydrolysis.
As shown in Figure 4A, cellular material from flu-B cells was efficiently taken up by GEN3 (46 and 67% of GEN3 were PKH26pos in the two representative experiments shown).
The obtained hybrid material can be efficiently dispersed in various organic solvents such as n-hexane, toluene, and THF to form stable dispersions.
This does show that the fretting crack nucleation of the studied material can be efficiently described by the local effective loadings inside the contact.
Further experiments demonstrate that these composite material can be efficiently used to separate/absorb the insoluble oil from oil polluted water as membrane/absorbent.
We report herein that a new FA dehydrogenation system comprising liquid FA and amines with high boiling point as hydrogen storage material can be efficiently decomposed for ultrapure H2 release under mild reaction conditions.
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