An important new focus for environmental inorganic chemistry is the selective removal and recovery of metals ions from aqueous solution with organic ligands anchored to modified polymer backbones. Several significant criteria for facile metal ion removal from aqueous solution includes the hydrophilicity of the pendant organic ligand when it is anchored to a hydrophobic, pH stable polymer backbone such as modified, macroporous polystyrene-divinylbenzene beads, as well as the kinetics and thermodynamics of the pendant ligand reaction with the selected metal ion. We report on an example of a polymer pendant ligand that is highly selective for the removal of metal ions from aqueous solution at pH 3.0 in a competitive environment. Thus, a predisposed polymer pendant N-sulfonyl-ethylenebis(dithiocarbamate) ligand ( PS-SED, 1.12 mmol/g), anchored on modified, macroporous 6% polystyrene-divinylbenzene beads, was synthesized and found to be highly selective for the removal of Ag + ions (2.17 mmol/g, 2:1 Ag +/ PS-SED complex, t 1 2 = 7 min ) from aqueous solution at pH 3.0 in the presence of a variety of competing trivand divalent metal ions such as Fe 3+, Cr 3+, Al 3+, Cu 2+, Ni 2+, Zn 2+, Mg 2+, and Pb 2+. When Hg 2+ ions (1.24 mmol/g, 1:1 Hg 2+/ PS-SED complex, t 1 2 = 10 min) are added to this mixture of metal ions, including Ag + ions, there is a pronounced selectivity toward Hg 2+ ions for the PS-SED ligand. In the absence of Ag + and Hg 2+, then Pb 2+ ions (1.06 mmol/g, 1:1 Pb 2+/ PS-SED complex, t 1 2 = 6 min ) are moderately selective in the presence of other competing metal ions including Cd 2+ ions; Cu 2+ ions are the exception ( 0.93 mool/g, ∼1:1 Cu 2+/ PS-SED complex, t 1 2 = 3 min ). As well, in the absence of Pb 2+ ions, Cd 2+ ions (00.65 mmol/g, ≈1:1 Cu 2+/ PS-SED complex, t 1 2 ⩾ 10 min ) also are moderately selective in the presence of other competing metal ions; but again, Cu 2+ is the exception. Whereas Cu 2+ has a selectivity over Pb 2+ and Cd 2+ in a competitive reaction, Fe 3+ ion is more selective in competition with Cu 2+, while in competition with Fe 3+ ion, Ag +, Hg 2+, Pb 2+ and Cd 2+ are all more selective. The overall selectivity was found to be: Hg 2+⩾Ag +> Cu 2+ > Pb 2+ Cd 2+ > Fe 3+ ≈ Al 3+ ∼ Cr 3+ > Ni 2+ > Zn 2+ > Mn 2+ ⪢ Mg 2+. Furthermore, a facile recovery of Ag +, Cu 2+, and Cd 2+, and Cd 2+ ions from the respective metalion PS-SED complexes on the beads were readily accomplished (∼99% recovery) using a 10% NaCN solution at pH 11. A full discussion of these results will be presented.