Page 235 - Materials Chemistry, Second Edition
P. 235
216 Life Cycle Assessment of Wastewater Treatment
Mittal, A., D. Kaur, and J. Mittal. 2008. Applicability of waste materials—bottom ash and
deoiled soya—as adsorbents for the removal and recovery of a hazardous dye, brilliant
green. Journal of Colloid and Interface Science 326: 8–17.
Mittal, A., D. Kaur, and J. Mittal. 2009a. Batch and bulk removal of a triarylmethane dye,
Fast Green FCF, from wastewater by adsorption over waste materials. Journal of
Hazardous Materials 163: 568–77.
Mittal, A., D. Kaur, A. Malviya, J. Mittal, and V.K. Gupta. 2009b. Adsorption studies on the
removal of coloring agent phenol red from wastewater using waste materials as adsor-
bents. Journal of Colloid and Interface Science 337: 345–54.
Molle, P., A. Lienard, A. Grasmick, A. Iwema, and A. Kabbabi. 2005. Apatite as an inter-
esting seed to remove phosphorus from wastewater in constructed wetlands. Water
Science and Technology 51: 193–203.
Mor, S., K. Chhoden, and K. Ravindra. 2016. Application of agro-waste rice husk ash for the
removal of phosphate from the wastewater. Journal of Cleaner Production 129: 673–80.
Mudd, S., A. Yoshida, and M. Koike. 1958. Polyphosphate as accumulator of phosphorus and
energy. Journal of Bacteriology 75: 224.
Nash, W.P. 1984. Phosphate minerals in terrestrial igneous and metamorphic rocks. In Phosphate
Minerals. J.O. Nriagu and P.H. Moore (ed.) Springer-Verlag, Heidelberg, Germany.
Nassef, E. 2012. Removal of phosphates from industrial waste water by chemical precipita-
tion. Engineering Science and Technology: An International Journal 2: 409–13.
Naushad, M., M.A. Khan, Z.A. ALOthman, and M.R. Khan. 2014. Adsorptive removal
of nitrate from synthetic and commercially available bottled water samples using
De-Acidite FF-IP resin. Journal of Industrial and Engineering Chemistry 20:
3400–7.
Naushad, M., Sharma G., Kumar A., Sharma, S., Ghfar, A.A., Bhatnagar, A., Stadler, et al.
2018. Efficient removal of toxic phosphate anions from aqueous environment using
pectin based quaternary amino anion exchanger. International Journal of Biological
Macromolecules 106: 1–10.
Nguyen, T.A.H., H.H. Ngo, W.S. Guo, J. Zhang, S. Liang, and K.L. Tung. 2013. Feasibility of
iron loaded ‘okara’ for biosorption of phosphorous in aqueous solutions. Bioresource
Technology 150: 42–9.
Nygaard, K. and A. Tobiesen. 1993. Bacterivory in algae: A survival strategy during nutrient
limitation. Limnology and Oceanography 38: 273–9.
Oladoja, N.A., R.O.A. Adelagun, A.L. Ahmad, and I.A. Ololade. 2015. Phosphorus recovery
from aquaculture wastewater using thermally treated gastropod shell. Process Safety
and Environmental Protection 98: 296–308.
Oladoja, N.A., R.O.A. Adelagun, A.L. Ahmad, and I.A. Ololade. 2017. Green reactive mate-
rial for phosphorus capture and remediation of aquaculture wastewater. Process Safety
and Environmental Protection 105: 21–31.
Oladoja, N.A., A.L. Ahmad, O.A. Adesina, and R.O.A. Adelagun. 2012. Low-cost biogenic
waste for phosphate capture from aqueous system. Chemical Engineering Journal 209:
170–9.
Olguı ́, E.J. 2003. Phycoremediation: Key issues for cost-effective nutrient removal processes.
Biotechnology Advances 22: 81–91.
Özacar, M. 2006. Contact time optimization of two-stage batch adsorber design using second-
order kinetic model for the adsorption of phosphate onto alunite. Journal of Hazardous
Materials 137: 218–25.
PainterOmoike, A.I. 1999. Removal of phosphorus and organic matter removal by alum dur-
ing wastewater treatment. Water Research 33: 3617–27.
Pant, H.K. and K.R. Reddy. 2003. Potential internal loading of phosphorus in a wetland con-
structed in agricultural land. Water Research 37: 965–72.