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The cycling stability of the carbon modified samples is also highly improved compared with the pristine.
The results showed that the nanopore volume of the modified samples is rather more developed than that of the parent zeolite.
Testing the carbons as the electrode materials in supercapacitors indicated that the electrochemical behavior of modified samples is governed mainly by the specific types of functional groups.
The light fastness of the modified samples is superior to commercial TiO2 pigments.
The bacteria growth on the control as well as on the peptide modified samples is displayed in the similarity of their E. coli growth curves (despite of a slight delay), as shown in Figure 10.
It can be seen that the total Si content in the modified samples is higher than that detected for the original sample 320HOA before the acid chelating treatment, which can explained by the existence of the silicon fluoride containing species on the outer surfaces of the modified zeolites, an effect that has been reported in the literature [27, 37].
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The micro-activities of modified samples were also evaluated.
MAT evaluations indicated that the LPG and diesel yields of citric modified samples were effectively improved.
The morphology pristine and modified samples were determined using atomic force microscopy (AFM).
The modified samples were also characterized by 1H NMR, FTIR and XPS techniques.
Modified samples were oxidized at 1000 °C for 80 h in air at atmospheric pressure.
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