| Literature DB >> 32059384 |
Musa Yahaya Pudza1, Zurina Zainal Abidin1, Suraya Abdul Rashid1, Faizah Md Yasin1, A S M Noor2, Mohammed A Issa1.
Abstract
The materials and substances required for sustainable water treatment by adsorption technique, are still being researched widely by distinguished classes of researchers. Thus, the need to synthesize substances that can effectively clean up pollutants from the environment cannot be overemphasized. So far, materials in bulk forms that are rich in carbon, such as biochar and varieties of activated carbon have been used for various adsorptive purposes. The use of bulk materials for such purposes are not efficient due to minimal surface areas available for adsorption. This study explores the adsorption task at nano dimension using carbon dots (CDs) from tapioca. The properties of carbon structure and its influence on the adsorptive efficacy of carbon nanoparticles were investigated by energy-dispersive spectroscopy (EDS), X-ray photoelectron spectroscopy (XPS), Fourier transform infrared spectroscopy (FTIR), high resolution transmission electron microscopy (HrTEM), and atomic force microscopy (AFM). The results implied carbon present in CDs are good adsorbents for effective adsorption of heavy metal ions (lead) with removal efficiency of 80.6% in aqueous environment. The adsorption process as explored by both Langmuir and Freundlich isotherms have proven favorability of the adsorption process. Langmuir form two and three have correlation coefficients R2 at 0.9922 and 0.9912, respectively. The Freundlich isotherm confirms CDs as having defined surface heterogeneity and the exponential distribution of active sites. The adsorption of lead unto CDs obeyed the second order kinetic model with coefficient of determination, R2 of 0.9668 and 0.9996 at an initial lead concentration of 20 mg/L and 100 mg/L, respectively. The findings validated the efficiency of CDs derived from tapioca as an excellent material for further utilization in the environmental fields of wastewater pollution detection and clean up, bio-imaging, and chemical sensing applications.Entities:
Keywords: adsorption; carbon dots; characterization; environment; heavy metals; sustainability
Year: 2020 PMID: 32059384 PMCID: PMC7075143 DOI: 10.3390/nano10020315
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1Carbon dots synthesis mechanism.
Figure 2(A) atomic force microscopy (AFM) 2D image of carbon dots (CDs) (B) AFM 3D morphology of CDs (C) high resolution transmission electron microscopic (HrTEM) image of CDs.
Atomic force microscopic statistics of CDs.
| Parameter | Mean | Minimum | Maximum | Sigma |
|---|---|---|---|---|
| Total Count | 32.000 | 32.000 | 32.000 | 0.000 |
| Height | 2.440 (nm) | 0.409 (nm) | 8.168 (nm) | 1.875 (nm) |
| Area | 1801.610 (nm2) | 95.367 (nm2) | 31,333.924 (nm2) | 5432.314 (nm2) |
| Diameter | 32.387 (nm) | 11.019 (nm) | 199.739 (nm) | 35.284 (nm) |
Figure 3Energy-dispersive spectroscopy (EDS) Spectra of carbon dots at point 1 and 2.
Figure 4(A,B) Wide and narrow scan for tapioca (precursor) and synthesized carbon dots.
Figure 5Fourier-transform infrared spectroscopy (FT-IR) spectrum of CDs and tapioca.
Figure 6Optical properties of CDs by UV-visible absorption and emission spectra.
Figure 7Effect of contact time on the removal efficiency of lead ions by CDs.
Figure 8(A) initial concentration of lead ions and removal efficiency of CDs and (B) relationship between lead removal and pH.
Figure 9Equilibrium adsorption and the three forms of Langmuir isotherm for lead adsorption into CDs.
Figure 10Freundlich Isotherm for CDs.
Figure 11Initial Concentration of lead ions for first and second order kinetics.