| Literature DB >> 29335490 |
Yi Li1, Hailan Jin2, Wenbo Liu1, Hang Su1, Yao Lu3, Jianfen Li4.
Abstract
The regeneration of WPAC through pyrolysis and its adsorption capacity of phosphorus were studied. The optimum conditions for WPAC regeneration were 650 °C and 2 h which resulted in a recovery of BET surface and total pore volume with a value of 1161.4 m2/g and 1.2176 m3/g. WPAC had a maximum PO43--P adsorption capacity of 9.65 mg/g which was 48.93% of PAC, while RWPAC had a maximum PO43--P adsorption capacity of 15.31 mg/g which was 77.64% of PAC. The kinetic analysis revealed that Langmuir model could well describe the adsorption process of PAC, WPAC and RWPAC on PO43--P and the PO43--P adsorption followed the pseudo-second-order model.Entities:
Year: 2018 PMID: 29335490 PMCID: PMC5768726 DOI: 10.1038/s41598-017-19131-x
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Influence of regeneration conditions on the LRP.
Figure 2Characteristic of WPAC (A) FTIR of WPAC before and after regeneration; (B) FTIR of WPAC under different regeneration conditions. a: 650 °C, 2 h; b: 650 °C, 3 h; c: 700 °C, 2 h, d: WPAC; e: PAC.
Analysis of the peaks of FTIR spectra.
| Peak position/cm−1 | Functional group | Before regeneration | After regeneration |
|---|---|---|---|
| 3428 cm−1 | −OH | Strong | Weaken |
| 3178 cm−1 | −NH−/−NH2− | Strong | Disappear |
| 1600–1400 cm−1 | C=C | Strong | Weaken |
| 1000–1300 cm−1 | C-O | Strong | Weaken |
| 500–1000 cm−1 (fingerprint) | — | Complicated | Disappear |
Figure 3TG/DTG curve of RWPAC.
BET surface and pore volume of PAC,WPAC and RPAC.
| sample | PAC | WPAC | RWPAC |
|---|---|---|---|
| BET surface area (m2·g−1) | 1228.6 | 593.2 | 1161.4 |
| total pore volume (m3/g) | 1.2380 | 0.4932 | 1.2176 |
| t-Plot micropore volume (m3/g) | 0.2545 | 0.0991 | 0.2232 |
| Mesoporous volumes (m3/g) | 0.8737 | 0.3015 | 0.8026 |
Figure 4Adsorption performance of PAC, WPAC and RWPAC on phosphorus (P).
Isotherms parameters of Langmuir and Freundlich models for PAC, WPAC and RWPAC.
| Object | Langmuir parameter | Freundlich parameter | ||||
|---|---|---|---|---|---|---|
| qmax(mg/g) | kL(L/mg) | R2 | kF(mg/g) | 1/n | R2 | |
| PAC | 19.72 | 0.014 | 0.9504 | 2.03 | 0.1188 | 0.8993 |
| WPAC | 9.65 | 0.014 | 0.9496 | 1.99 | 0.3586 | 0.8609 |
| RWPAC | 15.31 | 0.015 | 0.9479 | 2.13 | 0.2998 | 0.8337 |
Kinetic matters for P adsorption using pseudo-second-order kinetic model and the intra-particle model.
| pseudo-second-order kinetic model | intra-particle model | ||||
|---|---|---|---|---|---|
| k1 (g/min mg) | qe (mg/g) | R2 | k2 (mg/min1/2 g) | R2 | |
| PAC | 0.48 | 19.05 | 0.9484 | 1.0731 | 0.8934 |
| WPAC | 1.6 | 7.10 | 0.9870 | 0.4416 | 0.9425 |
| RWPAC | 0.78 | 13.46 | 0.9618 | 0.7981 | 0.8826 |
Figure 5(a) Pseudo-second-order kinetic models for P adsorption by PAC, WPAC and RWPAC. (b) Intraparticle diffusion models for P adsorption by PAC, WPAC and RWPAC.