Chinese Journal of Applied Chemistry ›› 2025, Vol. 42 ›› Issue (9): 1245-1256.DOI: 10.19894/j.issn.1000-0518.250086
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Cheng LI1, Yan-Ling LI2(
), Song-Song LI2, Xiao-Long LUO1(
), Bi-Cheng DENG3,4, Wu-Ping LIAO2,3,4
Received:2025-02-28
Accepted:2025-07-24
Published:2025-09-01
Online:2025-09-28
Contact:
Yan-Ling LI,Xiao-Long LUO
About author:luoxiaolong890419@163.comSupported by:CLC Number:
Cheng LI, Yan-Ling LI, Song-Song LI, Xiao-Long LUO, Bi-Cheng DENG, Wu-Ping LIAO. Preparation of Ion-Imprinted Material Based on 2-Ethylhexylamino Methyl Phosphonic Acid Mono-2-Ethylhexyl Ester Extractant and Its Application for the Removal of Trace Scandium[J]. Chinese Journal of Applied Chemistry, 2025, 42(9): 1245-1256.
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URL: http://yyhx.ciac.jl.cn/EN/10.19894/j.issn.1000-0518.250086
| Serial number | m/g | nHEHAMP/mmol | a(P)/(Sc) |
|---|---|---|---|
| Ⅰ | 0.040 7 | 0.048 53 | 66.64 |
| Ⅱ | 0.208 5 | 0.033 6 | 2.70 |
| Ⅲ | 0.043 5 | 0.034 3 | 2.76 |
Table 1 Determine the a(P)/(Sc) ratio of different materials
| Serial number | m/g | nHEHAMP/mmol | a(P)/(Sc) |
|---|---|---|---|
| Ⅰ | 0.040 7 | 0.048 53 | 66.64 |
| Ⅱ | 0.208 5 | 0.033 6 | 2.70 |
| Ⅲ | 0.043 5 | 0.034 3 | 2.76 |
Fig.7 Effect of the adsorption time on the adsorption of Sc3+ and the fitting of quasi-first-order kinetics (A), quasi-second-order kinetics (B) and intraparticle diffusion model (C)
| Adsorbents | PFOM | PSOM | ||||
|---|---|---|---|---|---|---|
| Qe/(mg·g-1) | k1/min-1 | R2 | Qe/(mg·g-1) | k2/(g·mg-1·min-1) | R2 | |
| P-PIM | 13.08 | 0.008 7 | 0.966 3 | 15.37 | 0.000 71 | 0.993 2 |
| P-IIM | 15.99 | 0.011 0 | 0.979 9 | 18.83 | 0.000 64 | 0.990 3 |
Table 2 Kinetic parameters of Sc3+ adsorption by P-PIM and P-IIM
| Adsorbents | PFOM | PSOM | ||||
|---|---|---|---|---|---|---|
| Qe/(mg·g-1) | k1/min-1 | R2 | Qe/(mg·g-1) | k2/(g·mg-1·min-1) | R2 | |
| P-PIM | 13.08 | 0.008 7 | 0.966 3 | 15.37 | 0.000 71 | 0.993 2 |
| P-IIM | 15.99 | 0.011 0 | 0.979 9 | 18.83 | 0.000 64 | 0.990 3 |
| Adsorbents | Intraparticle diffusion model | ||||||
|---|---|---|---|---|---|---|---|
| kd1/(mg·g-1·min-1/2) | kd2/(mg·g-1·min-1/2) | kd3/(mg·g-1·min-1/2) | C/(mg·g-1) | ||||
| P-PIM | 0.885 2 | 0.438 4 | 0.124 5 | 10.35 | 0.937 2 | 0.972 5 | 0.937 4 |
| P-IIM | 1.297 3 | 0.514 4 | 0.006 2 | 14.84 | 0.985 4 | 0.985 6 | 0.928 4 |
Table 3 Intraparticle diffusion model parameters for Sc3+ adsorption by P-PIM and P-IIM
| Adsorbents | Intraparticle diffusion model | ||||||
|---|---|---|---|---|---|---|---|
| kd1/(mg·g-1·min-1/2) | kd2/(mg·g-1·min-1/2) | kd3/(mg·g-1·min-1/2) | C/(mg·g-1) | ||||
| P-PIM | 0.885 2 | 0.438 4 | 0.124 5 | 10.35 | 0.937 2 | 0.972 5 | 0.937 4 |
| P-IIM | 1.297 3 | 0.514 4 | 0.006 2 | 14.84 | 0.985 4 | 0.985 6 | 0.928 4 |
Fig.8 Influence of the initial Sc3+ concentration on P-IIM adsorption (A), fitting curves of the Langmuir isotherm model and (B), the Freundlich isotherm model (C)
| T/K | Adsorbents | Langmuir model | Freundlich model | ||||
|---|---|---|---|---|---|---|---|
| Qm/(mg·g-1) | KL/(L·mg-1) | R2 | KF/(L·mg-1) | 1/n | R2 | ||
| 301 | P-PIM | 15.21 | 0.089 6 | 0.986 0 | 1.721 | 0.461 3 | 0.922 7 |
| P-IIM | 16.92 | 0.060 5 | 0.980 1 | 2.257 | 0.407 1 | 0.954 2 | |
Table 4 Adsorption isotherm parameters of Sc3+ by P-PIM and P-IIM
| T/K | Adsorbents | Langmuir model | Freundlich model | ||||
|---|---|---|---|---|---|---|---|
| Qm/(mg·g-1) | KL/(L·mg-1) | R2 | KF/(L·mg-1) | 1/n | R2 | ||
| 301 | P-PIM | 15.21 | 0.089 6 | 0.986 0 | 1.721 | 0.461 3 | 0.922 7 |
| P-IIM | 16.92 | 0.060 5 | 0.980 1 | 2.257 | 0.407 1 | 0.954 2 | |
| Adsorbents | Qe/(mg·g-1) | ρ(Sc3+)/ρ(coexisting ions) | Selectivity factor (KSc/M) of Sc3+ to coexisting ions | Ref. | |
|---|---|---|---|---|---|
| Fe3+ | La3+, Gd3+, Y3+, Yb3+ | ||||
| IIP-BT/CoFe2O4@SiO2 | 128.02 | 1∶1 | 1.740 | / | [ |
| 1∶2 | 1.632 | / | |||
| P40-750 | 20.77 | 1∶1 | 27.04 | Y3+: 208.25, Dy3+: 77.74 | [ |
| PLS MTS9580 | — | 1∶4 | 6.9 | — | [ |
| TRPO/SiO2-P | 13.3 | 1∶1 | >4 089 | Y3+>4 089, La3+>4 089, Ce3+>4 089 | [ |
| P-IIM | 16.54 | 1∶1 | 7.38 | La3+: 130.81, Gd3+: 30.27, Yb3+: 16.52, Y3+: 132.2 | This paper |
| 1∶500 | 55.2 | La3+: 90.1, Gd3+: 73.1 Yb3+: 86.4, Y3+: 26.0 | |||
Table 5 Adsorption capacity and selectivity of Sc3+ by different materials
| Adsorbents | Qe/(mg·g-1) | ρ(Sc3+)/ρ(coexisting ions) | Selectivity factor (KSc/M) of Sc3+ to coexisting ions | Ref. | |
|---|---|---|---|---|---|
| Fe3+ | La3+, Gd3+, Y3+, Yb3+ | ||||
| IIP-BT/CoFe2O4@SiO2 | 128.02 | 1∶1 | 1.740 | / | [ |
| 1∶2 | 1.632 | / | |||
| P40-750 | 20.77 | 1∶1 | 27.04 | Y3+: 208.25, Dy3+: 77.74 | [ |
| PLS MTS9580 | — | 1∶4 | 6.9 | — | [ |
| TRPO/SiO2-P | 13.3 | 1∶1 | >4 089 | Y3+>4 089, La3+>4 089, Ce3+>4 089 | [ |
| P-IIM | 16.54 | 1∶1 | 7.38 | La3+: 130.81, Gd3+: 30.27, Yb3+: 16.52, Y3+: 132.2 | This paper |
| 1∶500 | 55.2 | La3+: 90.1, Gd3+: 73.1 Yb3+: 86.4, Y3+: 26.0 | |||
| Concentration of the solution | Components | |||||||
|---|---|---|---|---|---|---|---|---|
| La | Sc | Gd | Sc | Yb | Sc | Y | Sc | |
| ρbefore/(mg·L-1) | 329.7 | 2.98 | 409.6 | 4.22 | 404.0 | 3.24 | 317.0 | 3.55 |
| ρafter/(mg·L-1) | 328.0 | 0.053 | 412.0 | 0.072 | 396.4 | 0.063 | 315.6 | 0.04 |
| Removal rate/% | 0.52 | 98.22 | 0.59 | 98.29 | 1.88 | 98.87 | 0.44 | 98.06 |
Table 6 Concentration and removal rate of metal ions from mixed rare earth solutions
| Concentration of the solution | Components | |||||||
|---|---|---|---|---|---|---|---|---|
| La | Sc | Gd | Sc | Yb | Sc | Y | Sc | |
| ρbefore/(mg·L-1) | 329.7 | 2.98 | 409.6 | 4.22 | 404.0 | 3.24 | 317.0 | 3.55 |
| ρafter/(mg·L-1) | 328.0 | 0.053 | 412.0 | 0.072 | 396.4 | 0.063 | 315.6 | 0.04 |
| Removal rate/% | 0.52 | 98.22 | 0.59 | 98.29 | 1.88 | 98.87 | 0.44 | 98.06 |
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