| Literature DB >> 28924199 |
Mengjun Han1,2,3, Kangkang Jiang1,2,3, Pengfei Jiao1,2,3, Yingchun Ji1,2,3, Jingwei Zhou1,2,3, Wei Zhuang1,2,3, Yong Chen1,2,3, Dong Liu1,2,3, Chenjie Zhu1,2,3, Xiaochun Chen1,2,3, Hanjie Ying4,5,6,7, Jinglan Wu8,9,10.
Abstract
A series of porous-carbon adsorbents termed as HDPC (hydrochar-derived pyrolysis char) were prepared from corncob and used for the 1-butanol recovery from aqueous solution. The influences of pyrolysis temperature on properties of the adsorbents were systematically investigated. The results showed that hydrophobicity, surface area, and pore volume of HDPC samples increased with an increase in pyrolysis temperature. Furthermore, the adsorption mechanism of 1-butanol on the adsorbents was explored based on correlation of the samples properties with adsorption parameters extracted from the 1-butanol adsorption isotherms (K F and Q e12 ). Overall, the 1-butanol adsorption capacity increased with a decrease in polarity and an increase in aromaticity, surface area and pore volume of HDPC samples. However, at different pyrolysis temperature, the factors causing the increase of 1-butanol adsorption on the adsorbents are variable. The kinetic experiments revealed that the pores played a vital role in the 1-butonal adsorption process. The intraparticle diffusion model was used to predict the adsorption kinetic process. The simulation results showed that intraparticle diffusion was the main rate-controlling step in the 1-butanol adsorption process.Entities:
Year: 2017 PMID: 28924199 PMCID: PMC5603594 DOI: 10.1038/s41598-017-12062-7
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Pyrolysis curves of hydrochar.
Proximate and element analysis of hydrochar and HDPC samples.
| Sample | Yield (%) | Ash(%) | C(%) | H(%) | O(%) | N(%) | H/C | O/C | (O + N)/C |
|---|---|---|---|---|---|---|---|---|---|
| HC | 100 | 0.88 | 60.84 | 5.35 | 32.78 | 0.15 | 1.047 | 0.404 | 0.407 |
| PC350 | 63.75 | 1.34 | 73.52 | 3.30 | 21.61 | 0.23 | 0.535 | 0.221 | 0.223 |
| PC450 | 51.28 | 1.28 | 80.16 | 3.21 | 15.12 | 0.23 | 0.478 | 0.142 | 0.144 |
| PC550 | 45.5 | 1.10 | 88.52 | 2.83 | 7.28 | 0.27 | 0.381 | 0.062 | 0.064 |
| PC650 | 42.16 | 1.16 | 90.67 | 2.14 | 5.74 | 0.30 | 0.281 | 0.047 | 0.050 |
| PC750 | 39.5 | 1.01 | 94.28 | 1.41 | 3.07 | 0.23 | 0.178 | 0.0 24 | 0.027 |
Figure 2FTIR spectra of the hydrochar and HDPC samples.
Figure 3XPS data of hydrochar and selected HDPC samples.
Experimental C1(s), binding energy (eV) and chemical state assignments for hydrochar and selected HDPC samples.
| sample | C1 | C2 | C3 | C4 |
|---|---|---|---|---|
| C-C/C-H(%) | C-O(%) | C=O (%) | O=C-O (%) | |
| HC | 284.8/59.70 | 285.7/23.03 | 287.0/15.22 | 288.5/2.04 |
| PC350 | 284.8/83.46 | 285.7/7.43 | 287.0/5.84 | 288.5/3.41 |
| PC550 | 284.8/82.7 | 285.7/11.72 | 287.0/5.58 | × |
| PC750 | 284.8/87.97 | 285.7/7.35 | 287.0/4.67 | × |
Porous textual properties of hydrochar and HDPC samples.
| Sample | SBET(m2/g) | Smic (m2/g) | Vt(cm3/g) | Vmic(cm3/g) | nCO2(mmol/g) | VDRCO2 |
|---|---|---|---|---|---|---|
| HC | 7.20 | 0 | 0.047 | 0 | 0.540 | 0.061 |
| PC350 | 16.71 | 0 | 0.052 | 0 | 1.419 | 0.097 |
| PC450 | 227.18 | 167.21 | 0.15 | 0.068 | 1.990 | 0.157 |
| PC550 | 502.45 | 383.61 | 0.279 | 0.155 | 2.490 | 0.199 |
| PC650 | 517.55 | 476.27 | 0.237 | 0.184 | 2.770 | 0.217 |
| PC750 | 502.38 | 462.15 | 0.238 | 0.179 | 2.920 | 0.232 |
Figure 4XRD profiles of hydrochar and HDPC samples at various thermal temperatures.
Figure 5Freundlich isotherms of 1-butanol adsorption on hydrochar and HDPC samples.
Langmuir and Freundlich isotherm parameters for adsorption of 1-butanol onto hydrochar and HDPC samples.
| Adsorbent | Freundlich | Langmuir | ||||
|---|---|---|---|---|---|---|
|
|
| R2 |
|
| R2 | |
| HC | 5.224 | 0.63 | 0.998 | 66.35 | 0.054 | 0.993 |
| PC350 | 22.81 | 0.370 | 0.999 | 82.7 | 0.222 | 0.98 |
| PC450 | 44.98 | 0.233 | 0.994 | 94.86 | 0.59 | 0.987 |
| PC550 | 80.65 | 0.121 | 0.993 | 112.12 | 3.047 | 0.967 |
| PC650 | 86.16 | 0.129 | 0.994 | 122.95 | 2.73 | 0.973 |
| PC750 | 90.886 | 0.152 | 0.997 | 138.25 | 2.23 | 0.971 |
Figure 6The percentage of adsorption of 1-butanol on the hydrochar and HDPC samples.
Figure 7Plot of intraparticle diffusion model for adsorption of 1-butanol on selected samples at different initial 1-butanol concentration.
Intraparticle diffusion model constants at different initial 1-butanol concentration, T = (25 ± 0.3) °C.
| Concentration (g/L) | 5 | 10 | 15 | |
|---|---|---|---|---|
| Parameters |
| 30.003 | 36.753 | 40.706 |
| R2 | 0.996 | 0.993 | 0.995 | |
|
| 3.859 | 4.019 | 4.633 | |
| R2 | 0.989 | 0.981 | 0.983 | |
|
| 1.077 | 1.164 | 1.38 | |
| R2 | 0.986 | 0.996 | 0.996 |