| Literature DB >> 29354340 |
Yan Yan1,2, Jie Li3, Fangbei Kong1,2, Kuankuan Jia1,2, Shiyu He1,2, Baorong Wang1,2.
Abstract
In this paper, novel L-lysine-modified graphene oxide (Lys-GO) was synthesized through amidation. The morphological and structural properties of Lys-GO were characterized using infrared spectrometry, scanning electronic microscopy and X-ray photoelectron spectroscopy. The as-prepared Lys-GO material was systematically investigated in a series of batch adsorption experiments for the removal of methylene blue (MB) and copper ions (Cu2+) from wastewater. These results showed that Lys-GO is a bifunctional adsorbent for the removal of dyes and metal ions, and excellent adsorption efficiency was obtained. The maximum adsorption capacities for MB dye and Cu2+ were 1679.1 mg/g and 186.9 mg/g at 35 °C, respectively. The kinetics of adsorption followed well the linear pseudo-second-kinetic model. The isotherm results indicated that MB adsorption can be described with the Langmuir isotherm model, while the adsorption of Cu2+ can be described with the Freundlich model. The excellent adsorption capacity indicated that the Lys-GO may be a promising adsorption material for the removal of environmental pollutants.Entities:
Keywords: adsorption; copper (Cu) ions; graphene; isotherms; methylene blue
Year: 2017 PMID: 29354340 PMCID: PMC5753059 DOI: 10.3762/bjnano.8.268
Source DB: PubMed Journal: Beilstein J Nanotechnol ISSN: 2190-4286 Impact factor: 3.649
Figure 1FTIR analysis of the obtained GO and Lys-GO.
Figure 2(a) XPS survey spectrum of Lys-GO, (b) C 1s XPS spectrum of Lys-GO, (c) N 1s XPS spectrum of Lys-GO and (d) O 1s spectrum of Lys-GO.
Figure 3SEM images of Lys-GO (A) and GO (B).
Figure 4Effect of solution pH value on the adsorption of (a) MB (C0 = 500 mg/L) and (b) Cu2+ (C0 = 100 mg/L) on Lys-GO.
Figure 5The adsorption of (a) MB (C0 = 1800 mg/L, pH 8.0) and (b) Cu2+ (C0 = 200 mg/L, pH 7.0) on Lys-GO.
Figure 6(a,b) Pseudo-first-order and (c,d) pseudo-second-order kinetics models for MB and Cu2+ adsorption on Lys-GO (initial conditions: MB 1800 mg/L, solution pH 8.0; Cu2+ 200 mg/L, pH 7.0).
The kinetic parameters for the adsorption of MB and Cu2+ on Lys-GOa.
| MB | Cu2+ | |||||||
| temperature | 20 °C | 25 °C | 30 °C | 35 °C | 20 °C | 25 °C | 30 °C | 35 °C |
| 1664.882 | 1666.358 | 1670.513 | 1679.104 | 168.166 | 171.832 | 179.011 | 186.918 | |
| linear pseudo-first-order | ||||||||
| κ1 (min−1) | 5.60·10−2 | 5.59·10−2 | 7.34·10−2 | 7.17·10−2 | 5.08·10−2 | 5.33·10−2 | 4.86·10−2 | 4.84·10−2 |
| 1907.789 | 1817.014 | 1620.225 | 1177.619 | 611.106 | 511.563 | 263.757 | 193.234 | |
| SD | 5.195 | 4.091 | 2.364 | 7.465 | 7.015 | 6.144 | 3.069 | 0.838 |
| 0.8895 | 0.8882 | 0.9771 | 0.9198 | 0.8445 | 0.8701 | 0.9627 | 0.9134 | |
| Linear pseudo-second-order | ||||||||
| κ2 (g/mg/min) | 5.82·10−5 | 6.18·10−5 | 1.01·10−4 | 1.20·10−4 | 1.48·10−4 | 2.23·10−4 | 3.67·10−4 | 5.91·10−4 |
| qe,cal (mg/g) | 1772.801 | 1768.703 | 1740.508 | 1738.680 | 198.807 | 194.553 | 194.932 | 198.020 |
| SD | 3.463 | 3.372 | 2.789 | 2.572 | 1.845 | 1.589 | 1.330 | 1.111 |
| 0.9995 | 0.9994 | 0.9993 | 0.9996 | 0.9987 | 0.9988 | 0.9990 | 0.9993 | |
aSD: standard deviation = [(qe,cal − qe,exp)/(n − 2)]1/2; n: number of data points in the set; κ1: rate constant for a pseudo-first-order reaction (min−1); κ2: rate constant for a pseudo-second-order reaction (g/mg/min); qe: maximum capacity of adsorption (mg/g).
Figure 7Adsorption isotherms of MB (a) and Cu2+ (b) on Lys-GO.
Langmuir and Freundlich isotherm model constants and correlation coefficients for the adsorption of MB and Cu2+ on Lys-GO.
| adsorbate | Langmuir | Freundlich | ||||
| MB | 1634.362 | 3.23 | 0.9879 | 8.64 | 999.02 | 0.7669 |
| Cu2+ | 156.908 | 6.49 | 0.6722 | 6.67 | 115.90 | 0.9281 |
Comparison of MB and Cu2+ adsorption capacities on various materials.
| adsorbate | type of adsorbents | reference | |
| MB | Mt-SB12 | 254 | [ |
| agar/graphene oxide (AGO) | 578 | [ | |
| graphene oxide/calcium alginate (GO/CA) | 181.81 | [ | |
| GO/MgO NCs | 833 | [ | |
| magnetic graphene sponge (Fe3O4-GS) | 526 | [ | |
| Lys-GO | 1679.1 | this work | |
| Cu2+ | Mt-SB12 | 10.2 | [ |
| magnetic cassava residue microspheres (MCRS) | 110.5 | [ | |
| PAN-kapok hollow microtubes | 90.1 | [ | |
| silico-manganese nanohybrid adsorbent (SMNA) | 40–88 | [ | |
| GO1 | 91.6 | [ | |
| Lys-GO | 186.9 | this work | |
Scheme 1Synthesis of Lys-GO.