| Literature DB >> 30112002 |
Md Hasan Zahir1, Shakhawat Chowdhury2, Md Abdul Aziz3, Mohammad Mizanur Rahman4.
Abstract
The capacities of the p-t-butylcalix[8]arene (abbreviated asEntities:
Year: 2018 PMID: 30112002 PMCID: PMC6077549 DOI: 10.1155/2018/4015878
Source DB: PubMed Journal: Int J Anal Chem ISSN: 1687-8760 Impact factor: 1.885
Figure 1Extractability of all tested transition metal ions as a function of pH. Organic phase: HL = 5 × 10−4 M; aqueous phase: = (●) 5 × 10−5 M; succinic acid = 0.01 M; and buffer solution: 0.01 M; MES-NaOH (pH 5.0–7.0) and 0.1 M Tris-HClO4 (pH 7.0–9.0). [Cd2+] = (■)1 × 10−4 M, 0.2 M NaClO4. O/A = 1; T = 25°C. O:A represents the ratio between organic (O) and aqueous (A) volumes in the experiments.
Figure 2Effect of the organic solvent (nitrobenzene, dichloromethane, or chloroform) on the extraction percentage of Cd2+ with H8L. HL = 5 × 10−4 M; aqueous phase [metal ion]: = (●) 5 × 10−5 M. O/A = 1; succinic acid = 0.01 M; and buffer solution, T = 25°C.
Figure 3Effect of the organic solvent (nitrobenzene, dichloromethane, or chloroform) on the extraction percentage of Ni2+ with H8L. p-calix[8] = 5 × 10−4 M; aqueous phase [metal ion]: = (●) 5 × 10−5 M. succinic acid = 0.01 M and buffer solution, O/A = 1; T = 25°C.
Figure 4Plot of logD vs. log[HnL] for Cd2+ and Ni3+ under the same reaction condition of Figure 3.
Figure 5Plot of logD vs. log[NH3] for Cd2+ and Ni3+ with H8L under the same reaction condition of Figure 3.
Figure 6Plots of percentage extraction vs. molar ratio [L]/[M] for the extraction of Cd2+ and Ni3+ with H8L under the same reaction condition of Figure 3. O:A = 1:1. Symbol (empty green inverted triangle), (filled green circle) (repeated) (filled red diamond) (filled red circle) (repeated)-H8L; O/A = 1; T = 25°C.
Extraction percentage (Ex%) of the transition metal ions with H8L from ethylene diamine into dichloromethane at 25°C and distribution ratio of M(en)2 and M(en)3 in the aqueous phase before extraction. Uncertainties are given in parentheses as standard errors of the mean (N = 3).
| %E | M(en)2 | M(en)3 | |
|---|---|---|---|
| (%) | (%) | ||
| Co(II) | 0 | 0 | 100 |
| Ni(II) | 0 | 0 | 100 |
| Cu(II) | 97.0 (2) | 100 | 40 |
| Zn(II) | 46.0 (3) | 3 | 97 |
| Ag(I) | 52.7 (5) | 99 | 35 |
| Cd(II) | 90.1 (1) | 15 | 85 |
∗ (en) = ethylene diamine,∗∗ (en) = ethylene triamine.
Elemental analysis of Cu2+-H8L and Cd2+-H8L complexes and estimated chemical formula.
| Cu2+: estimate chemical formula | Cd2+: estimate chemical formula | ||||||
| Cu(en)2H6L.5H2O | Cd(en)2 H6L.3H2O | ||||||
|
| |||||||
| H(%) C(%) N(%) | H(%) C(%) N(%) | ||||||
|
| |||||||
| Obs. | 8.37 | 70.89 | 3.56 | Obs. | 8.18 | 69.90 | 3.49 |
|
| |||||||
| Calc. | 8.73 | 70.40 | 3.57 | Calc. | 8.41 | 69.83 | 3.54 |
Scheme 1Structure of Cu(en)2-H8L complex.
Figure 7FESEM images of the samples: (a) H8L, (b) Cd2+-H8L, and (c) sample (b) at high magnification.
Figure 8EDX spectra of (a) H8L and (b) Cd2+-H8L. EDX spectra for the region marked by an arrow in (b), and (c) of Cd2+-H8L in Figure 7.
Figure 9FTIR spectra of (a) H8L and (b) Cd2+-H8L.
Figure 101H NMR spectra of (a) H8L at 25°C in CDCl3 and (b) Cd-H8L at 25°C in CDCl3 at 400 MHz.
Figure 11Metal ions percentage extraction (E%) at pH 11.5 by H8L-ester. O/A = 1; T = 25°C.