[1]
Vishnu, D.; Dhandapani, B.; Authilingam, S.; Sivakumar, S.V. A comprehensive review of effective adsorbents used for the removal of dyes from wastewater. Curr. Anal. Chem., 2022, 18(3), 255-268.
[2]
Bhat, A.H.; Rangreez, T.A. Inamuddin.; Chisti, H.T.N. Wastewater treatment and biomedical applications of montmorillonite based nanocomposites: A review. Curr. Anal. Chem., 2022, 18(3), 269-287.
[3]
Rajan, M.S.; John, A.; Thomas, J. Nanophotocatalysis for the removal of pharmaceutical residues from water bodies: State of art and recent trends. Curr. Anal. Chem., 2022, 18(3), 288-308.
[4]
Das, D.; Sharma, A.K.; Chattopadhyay, K.K.; Banerjee, D. Dye removal ability of pure and doped graphitic carbon nitride. Curr. Anal. Chem., 2022, 18(3), 309-340.
[5]
Radosavljević, J.; Stanić-Vučinić, D.; Stojadinović, M.; Radomirović, M.; Simović, A.; Radibratović, M.; Ćirković Veličković, T. Application of ion exchange and adsorption techniques for separation of whey proteins from bovine milk. Curr. Anal. Chem., 2022, 18(3), 341-359.
[6]
Özdemir, V.T.; Tuğaç, H.M.; Arar, Ö. Two-pot oxidative preparation of dicarboxylic acid containing cellulose for the removal of beryllium (Be2+) from aqueous solution. Curr. Anal. Chem., 2022, 18(3), 360-369.
[7]
Jayaseelan, A.; Panchamoorthy, G.K.; Nithianantharaj, V. An eco-friendly and economical approach for removal of remazol blue, malachite green and rhodamine b dyes from wastewater using bio-char derived from chlorella vulgaris biomass. Curr. Anal. Chem., 2022, 18(3), 370-382.
[8]
Somya, A.; Singh, M. Studies on Sodium Lauryl Sulphate-supported Thorium (IV) Phosphate: A new surfactant-supported cation exchange resin, useful in water purification. Curr. Anal. Chem., 2022, 18(3), 383-390.