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Four materials adsorbed P, and two of these materials were modified, i.e., a lanthanum-modified-bentonite (LMB) and an aluminum-modified-zeolite (AMZ), and had the highest adsorption capacities of 11.4 and 8.9 mg P g− 1, respectively.
The function of pH and contact time was studied and the highest adsorption capacities for Cu II) were found as 97% with pH of 4.5 at the end of 300 min.
The results show that the CMP-3 possesses the highest adsorption capacities of 269 mg g− 1 for rhodamine B, 198 mg g− 1 for methyl orange and 218 mg g− 1 for iodine, respectively.
Equilibrium adsorption isotherms of CO2 measured at 273, 298, and 313 K, and N2 adsorption isotherms measured at 298 K confirm that the highest adsorption capacities for each of these two gases are exhibited by Mg-MOF-74 and 0.25 wt% MWCNT/MIL-100(Fe) (MMC2).
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Especially, pure CNTs exhibited the highest adsorption capacity.
The CO2 adsorption decreased with increase in temperature with the highest adsorption capacity obtained at 25 °C.
The highest adsorption capacity using an AC supported with f-MWCNTs was 113.29 mg/g.
The highest adsorption capacity was obtained at pH 9 and 25 °C.
A. niger showed the highest adsorption capacity 11.792 mg/g at initial pH 2.0.
We found that Fe3O4 TSPA particles presented the highest adsorption capacity, whereas the pure Fe3O4 particles showed the lowest capacity.
The material with the highest adsorption capacity showed the optimal electrical performance.
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