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However, the concentration of SS seemed to show less effect on the yield of SS-capped AgNPs.
It was found that 5, 10, and 15 mg/mL of SS + 5 mM of AgNO3 could produce SS-capped AgNPs and the yield increased with the increasing concentration of SS (0.47, 0.63, and 1.26 mM, respectively), as presented in Table 3.
It was found that the SS-capped AgNPs could not be formed at pH 9 at any concentration of SS and AgNO3.
To measure the concentration of SS accurately, an underwater scattering model is proposed in the paper.
Results showed that both stirring time of reaction solution and the concentration of SS affected crystals' structure and aspect ratio.
An underwater scattering measuring system corresponding to this model was established to measure the concentration of SS in solution samples that simulated the oilfield reinjection water.
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The higher concentrations of SS and AgNO3 increased the yield of SS-capped AgNPs.
A higher yield of SS-capped AgNPs was obtained when the concentrations of SS and AgNO3 were increased.
The SS-capped AgNPs were successfully synthesized at various concentrations of SS and AgNO3, but the yields were different.
Consequently, our study highlights that hybrid scaffolds obtained by the addition of variable concentrations of SS to a constant COLL composition positively influences the behavior of 3T3-L1 cells with the exception of the COLL SS6 matrix (60% SS).
The results from one year of operation indicated that the system had successfully achieved the water quality objectives: compared with the water quality before the treatment system worked, the average concentrations of SS, CODMn, BOD5, NH3-N, TP and Chla were reduced by 79%, 39.5 %, 45 %, 36 44.3% and 70%, respectively, and DO and transparency were improved by 27% and 1344.3respectively.
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