| Literature DB >> 27535800 |
Lin Zhang1, Xue Gao1, Zhixuan Zhang1, Mingbo Zhang1, Yiqian Cheng1, Jixin Su1.
Abstract
Treatment of azo dye effluents has received increaEntities:
Year: 2016 PMID: 27535800 PMCID: PMC4989162 DOI: 10.1038/srep31797
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1The XRD patterns of powders: (a) Al, (b) Al-Cu-1h, (c) Al-Cu-5h, (d) Al-Cu-10h, (e) Cu.
Figure 2(a) Low magnification SEM images of Al-Cu-10h alloy particles; (b) High magnification SEM images of Al-Cu-10h alloy particles, insert: EDS spectrum (c) Low magnification TEM images of Al-Cu-10h alloy particles; (d) Surface microstructures of Al-Cu alloys.
Figure 3Degradation of 3R by different catalysts (Al, Al+Cu, Al-Cu) under acidic condition (a) and alkaline condition (b).
Figure 4Effect of initial pH value on the degradation of 3R over Al-Cu-10h alloy particles under acidic condition (a) and alkaline condition (b).
Figure 5Effect of initial dye concentration on the degradation of 3R.
Figure 6Relationship between initial dye concentration (C0) and half-time (t1/2) under the treatment of Al-Cu alloys.
Figure 7Kinetics of the degradation of 3R for different initial dye concentrations.
Zero-order kinetic parameters of X-3B degradation.
| Concentration (mg/L) | Linear equation | k/s−1 | R2 |
|---|---|---|---|
| 200 | C = −2.09 t+213.95 | 2.09 | 0.93 |
| 500 | C = −3.93 t+543.56 | 3.93 | 0.94 |
| 1000 | C = −7.04 t+1123.02 | 7.04 | 0.94 |
| 1500 | C = −9.83 t+1534.90 | 9.83 | 0.93 |
| 2000 | C = −10.84 t+2180.62 | 10.84 | 0.96 |
Figure 8Relationship between k and C0.
Figure 9UV−vis absorption spectra changes of an AO7 aqueous solution during Al-Cu alloys treatment.
Figure 10FTIR absorption spectra of 3R before and after treatment by Al-Cu-10h alloy particles: (a) Acid Scarlet 3R without treatment; (b) Acid Scarlet 3R after treatment.
Figure 11HPLC-MS analysis of 3R degradation products.
(A) t = 4.31 min; (B) t = 4.91 min; (C) t = 5.50 min; (D) t = 6.20 min.
Figure 12Proposed chemical structures of 3R degradation products identified by HPLC–MS.
Figure 13A possible pathway for the degradation of Acid Scarlet 3R in Al-Cu alloys system.
Figure 14SEM and TEM images of Al-Cu-10h alloy particles after the decolorization reaction (a–d) and after the strong corrosion reaction (e,f).
Figure 15A proposed degradation mechanism of Acid Scarlet 3R in Al-Cu alloys system.