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The uptake of RO13 dye appeared to be temperature dependent, showing maximum removal at lower temperature.
The optimization study indicates 84% as maximum removal at 50 °C, 20 mg/L of metal concentration and a sorbent dosage of 2 g/L.
The optimization study indicates 99% as the maximum removal at pH 2, 20 °C, 1.923 mM of metal concentration and a sorbent dose of 4 g/dm3.
Venil et al. (2011) reported maximum removal at the minimum levels of NH4Cl in Bacillus sp. Scanning electron microscopy (SEM) and Fourier transform infrared spectroscopy (FTIR) was used to investigate adsorption phenomena.
1.0 g adsorbent system showed optimum adsorption over varied amounts of adsorbent of 0.1 1.2 g using dye concentration of 3 × 10−5 M. Adsorptions of the dyes increased with increasing time and reached maximum removal at the adsorption equilibrium.
The adsorption of fluoride by nano- γ-alumina was found to depend on the pH of fluoride solution and exhibited good adsorption, in the wide pH window of 3 10 with maximum removal at pH 4. At this pH the residual fluoride was found to be as low as 0.3 mg/L which is within the permissible limit of fluoride in drinking water as per WHO.
Similar(54)
Increasing agitation speed causes increased removal of As V) and reached a maximum removal value at 160 rpm (95%).
The maximum removal capacity at equilibrium concentration of 40 ppm was found to be 0.83 mg/g.
The silver weight percent, calcination temperature, and ammonia concentration represent maximum removal efficiency at an optimum value of 1%, 200 °C, and 1 M respectively which are central values of optimization.
Further, maximum removal was obtained at pH 3. Thus, kinetic study was carried out at pH 3.
Maximum removal is observed at pH 7.0.
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