Eco-friendly synthesis of carbon dots derived from Morus nigra fruits with emphasis on photocatalytic degradation and relaxation time properties
ABSTRACT This study reports the eco-friendly synthesis of carbon dots (C-dots) from Morus nigra fruits and evaluates their structural, optical, and photocatalytic properties. Transmission electron microscopy (TEM) analysis revealed predominantly spherical C-dots with an average diameter of 4.67 ± 1.6 nm and an interplanar spacing of 0.286 nm, confirming their crystalline nature. X-ray diffraction (XRD) revealed an amorphous structure with a broad peak at ~21.4°, characteristic of small sp² domains. X-ray photoelectron spectroscopy (XPS) confirmed the presence of carbon, oxygen, and nitrogen, with surface functional groups including C═O, C─N and O-C═O. The C-dots demonstrated effective photocatalytic activity, degrading methylene blue (MB) dye under solar irradiation with an efficiency of 95.8% at a 2.5 mg/L concentration, following first-order kinetics (rate constant of 0.0345 min−1). Photoluminescence (PL) studies showed excitation-dependent emission, with optimal performance at 350 nm, yielding the highest intensity and the longest average fluorescence lifetime of 21.88 ns. The CIE chromaticity coordinates further confirmed the excitation-dependent green luminescence. These results highlight the potential of Morus nigra-derived C-dots for environmental remediation, optical sensing and security-related applications.
- Research Article
28
- 10.1038/s41598-024-78636-4
- Dec 28, 2024
- Scientific Reports
Modifying ZnO nanorods with graphene oxide (GO) is crucial for enhancing photocatalytic degradation by boosting the concentration of reactive oxygen species (ROS) in the reaction medium. In this study, we present a straightforward chemical synthesis of ZnO nanorods embedded on GO, forming a novel nanocomposite, GOZ. This composite serves as an efficient photocatalyst for the sunlight-driven degradation of methylene blue (MB) and ciprofloxacin (CIP). Rietveld refined X-ray diffraction (RXRD), Fourier-transform infrared (FTIR), and transmission electron microscopy (TEM) confirmed the formation of ZnO nanorods and GOZ nanocomposite. The possible defect states and oxygen vacancies were confirmed using the emission spectra that played a significant role in the photocatalytic activity. The values of the optical bandgap for GOZ-7 (7% GO) and GOZ-10 (10% GO) were found to be 2.8 eV and 2.7 eV using Tauc plot, respectively, showing a red shift as a result of increasing the concentration of GO. The photocatalytic efficiency of GOZ-7, GOZ-10 were evaluated under direct sunlight for degradation of MB dye and CIP antibiotic in an aqueous solution. The highest photocatalytic activity was observed by GOZ-10. The scavenging study confirmed that the photocatalysis occurred due to the generation of reactive oxygen species (ROS), especially by hydroxyl radical (OH.). The cost-effective GOZ-10 nanocomposite emerges as a promising candidate for the rapid photocatalytic degradation of both cationic dyes and antibiotics, demonstrating its potential in environmental remediation applications.
- Research Article
91
- 10.3390/w15122275
- Jun 17, 2023
- Water
ZnO is a semiconductor material that has important physical and chemical properties, which are frequently and significantly enhanced by the addition of impurities, such as doping. A study of the structural properties of pristine and functionalized (i.e., doped with Antimony and Tungsten) ZnO nanoparticles has been conducted for the photocatalyst-based degradation of methylene blue (MB) dye under both Ultraviolet (UV) and solar light. Authors have used a 1% concentration of dopant for doping purposes. The synthesized materials were characterized for structural analysis, functional group identification, spectroscopic measurements, and morphological examination using X-ray diffraction (XRD), Fourier transform-infrared (FTIR), UV-Vis spectroscopy (UV-Vis), and Field emission scanning electron microscope (FESEM) techniques. XRD analysis confirmed that the synthesized-doped materials retained the wurtzite hexagonal structure with a purity of 99%. Transmission electron microscope (TEM) analysis data reveals the average size of pure ZnO-NPs was found to be 7 nm; after doping the size was found to be increased to 18 nm and 9.55 nm, respectively, for ZnO-W and ZnO-Sb. As per FESEM analysis results, minor morphological changes were observed after doping. The Ultraviolet Differential reflectance spectroscopy UV-DRS study revealed the confirmation of ZnO doping with antimony and tungsten, which exhibited a blue shift. The decrease in the band-gap on doping makes the ZnO-NPs more efficient for photocatalytic applications. The photocatalytic efficiency of pristine and doped ZnO-NPs catalysts for methylene blue photocatalytic degradation (PCD) was analyzed under both UV and solar irradiation. This study analyzed the effect of pH, nano-photocatalyst dose, and initial dye concentration (ICD) on the PCD of MB. The obtained analytical results showed that the ideal conditions for the PCD of MB dye are as follows: pH = 9, the quantity of the nano-photocatalyst used was 300 mg/L, and an initial MB dye dose of 10 ppm. These conditions lead to a PCD of about 91% of the MB dye by using ZnO-Sb nano-photocatalyst on exposure to solar radiation. The reusability study also revealed the stability of nano-photocatalysts. The current research may pave the way for the removal of hazardous dyes from wastewater discharged by many industries.
- Research Article
79
- 10.1016/j.mtchem.2020.100392
- Jan 2, 2021
- Materials Today Chemistry
Development of versatile CdMoO4/g-C3N4 nanocomposite for enhanced photoelectrochemical oxygen evolution reaction and photocatalytic dye degradation applications
- Research Article
35
- 10.1007/s11356-023-30297-y
- Oct 14, 2023
- Environmental Science and Pollution Research
Conversion of carbon-rich waste biomass into valuable products is an environmentally sustainable method. This study accentuates the synthesis of novel SnO2 QDs@g-C3N4/biochar using low-cost sawdust by applying the pyrolysis method. Morphology, structure, and composition of the synthesized SnO2 QDs@g-C3N4/biochar nanocomposite were characterized using SEM (scanning electron microscope), TEM (transmission electron microscope), XRD (X-ray diffraction), XPS (X-ray photoelectron spectroscopy), FT-IR (infrared spectroscopy) and PL (photoluminescence) spectroscopy. The average diameter of the SnO2 QDs was measured from TEM and found to be 6.79nm. Optical properties of the as-synthesized SnO2 QDs@g-C3N4/biochar were characterized using UV-visible spectroscopy. The direct band gap of synthesized SnO2 QDs@g-C3N4/biochar nanocomposite was calculated from Tauc's plot and found to be 2.0eV. The fabricated SnO2 QDs@g-C3N4/biochar photocatalyst exhibited outstanding photocatalytic degradation efficiency for the removal of Rose Bengal (RB) and Methylene Blue (MB) dye through the Advanced Oxidation Process (AOP). The synthesized photocatalyst showed a degradation efficiency of 95.67% for the removal of RB under optimum conditions of 0.3mL H2O2, photocatalyst dosage of only 0.06 gL-1, and 15ppm initial RB concentration within 80min, and 94.5% for the removal of MB dye with 0.5mL of H2O2, 0.08 gL-1 of the fabricated photocatalyst and 6ppm of initial MB concentration within 120min. The photodegradation pathway followed the pseudo-first-order reaction kinetics with a rate constant of 0.00268min-1 and 0.00163min-1 for RB and MB respectively. The photocatalyst can be reused up to the 4th cycle with 80% efficiency.
- Research Article
50
- 10.1016/j.apt.2018.06.007
- Jun 18, 2018
- Advanced Powder Technology
Efficient photodegradation of methylene blue (MB) under solar radiation by ZrC nanoparticles
- Research Article
20
- 10.3390/catal12030328
- Mar 13, 2022
- Catalysts
The morphology, chemical composition, and doping process of metal oxides and sulfides play a significant role in their photocatalytic performance under solar light illumination. We synthesized Cu2+-doped ZnO–SnS nanocomposites at 220 °C for 10 h, using hydrothermal methods. These nanocomposites were structurally, morphologically, and optically characterized using various techniques, including powder X-ray diffraction (XRD), transmission electron microscopy (TEM), X-ray photoelectron spectroscopy (XPS), and UV-visible absorption spectroscopy. Their photocatalytic activity (PCA) on methylene blue (MB) pollutant dye was examined under 150 W solar light illumination. Mixed-phase abundances with hexagonal ZnO and orthorhombic SnS structures were observed. TEM micrographs showed changes in morphology from spherical to nano-flake structures with an increasing doping concentration. XPS indicated the chemical states of the constituent elements in the nanocomposites. UV-visible absorption spectroscopy showed a decrease in the bandgap with an increasing doping concentration. Strong PCA was observed due to the separation of charge carriers, a change in bandgap, and a high light absorption ability under solar light irradiation. The measured photodegradation efficiency of the MB dye was approximately 97% after 2 h. The movement of the charge carriers and the bandgap alignment of the synthesized composites are briefly discussed.
- Research Article
22
- 10.1016/j.molstruc.2022.134869
- Dec 25, 2022
- Journal of Molecular Structure
Tantalum doped titanium dioxide nanoparticles for efficient photocatalytic degradation of dyes
- Research Article
10
- 10.3390/gels8110728
- Nov 10, 2022
- Gels
A sol-gel synthesis technique was employed for the preparation of anatase phase {001}-TiO2/Au hybrid nanocomposites (NCs). The scalable, schematic, and cost-efficient method was successfully modified using HF and NH4OH capping agents. The photocatalytic activity of the as-synthesized {001}-TiO2/Au NCs were tested over 2-cycle degradation of methylene blue (MB) dye and pharmaceutical active compounds (PhACs) of ibuprofen and naproxen under direct sunlight illumination at 35 °C and 44,000 lx. Transmission electron microscopy (TEM), high resolution transmission electron microscopy (HR-TEM), fast Fourier transform (FFT), X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), energy dispersive X-ray spectroscopy (EDS), and ultraviolet-visible diffuse reflectance spectroscopy (UV-Vis DRS) were employed for the characterization of the as-prepared sample. The characterization results from the TEM, XPS, and XRD studies established both the distribution of Au colloids on the surface of TiO2 material, and the presence of the highly crystalline structure of anatase {001}-TiO2/Au NCs. Photodegradation results from the visible light irradiation of MB indicate an enhanced photocatalytic performance of Au/TiO2 NCs over TiO2. The results from the photocatalytic activity test performed under direct sunlight exposure exhibited promising photodegradation efficiencies. In the first cycle, the sol-gel synthesized material exhibited relatively better efficiencies (91%) with the MB dye and ibuprofen, while the highest degradation efficiency for the second cycle was 79% for the MB dye. Pseudo first-order photodegradation rates from the first cycle were determined to be comparatively slower than those from the second degradation cycle.
- Research Article
10
- 10.1016/j.ceramint.2024.12.009
- Jul 1, 2025
- Ceramics International
Hybrid Functional Piezocatalytic and Photocatalytic Activity of 0.94Bi0.5Na0.5TiO3-0.06BaTiO3/Cement-based Composites
- Research Article
23
- 10.1016/j.inoche.2024.112523
- May 10, 2024
- Inorganic Chemistry Communications
A green approach to synthesis of Ag-doped CeO2 nanorods embedded reduced graphene oxide nanocomposite for excellent photocatalytic and antimicrobial activity
- Research Article
46
- 10.1016/j.diamond.2016.07.008
- Jul 19, 2016
- Diamond and Related Materials
Effect of modified graphene quantum dots on photocatalytic degradation property
- Research Article
25
- 10.1080/03067319.2021.1979533
- Sep 20, 2021
- International Journal of Environmental Analytical Chemistry
Cobalt aluminate/carbon composite nanoparticles have been synthesised by utilising an auto-combustion method using glycine as an inexpensive fuel. The products were analysed by various techniques such as powder X-ray diffraction (XRD), Fourier transform infrared (FT-IR), thermal analysis (TG), field emission scanning electron microscopy (FE-SEM), transmission electron microscopy (TEM), and X-ray photoelectron spectroscopy (XPS), UV-Vis diffuse reflectance spectrum (DRS), energy-dispersive X-ray spectroscopy (EDS). The results exhibited that the average crystallite size of the as-prepared CoAl2O4/C nanocomposite was ca. 26 nm. The photocatalytic activity of the as-prepared catalyst was evaluated through the degradation of methylene blue (MB) dye under different conditions, and the photocatalytic degradation mechanism was proposed. The results indicated that CoAl2O4/C nanocomposite has a high catalytic performance for the photocatalytic degradation of MB dye under UV illumination in the presence of H2O2. The degradation efficiency reached 98.5% in 90 min with a degradation rate constant of 0.046 min−1.
- Research Article
8
- 10.1021/acs.langmuir.3c03896
- Apr 8, 2024
- Langmuir
Degradation of dyes under natural light sources is one of the most active research areas in basic science for greener technology. In this context, the photocatalytic activity of semiconductors has received massive attention in solving water treatment-related issues as these possess enormous potential for degrading organic impurities. Here, we report that barium aluminate (BaAl2O4, BAO), which has been extensively studied for photoluminescence applications, is found to be a highly potent candidate for photocatalytic activities. We have explored the degradation of dyes (meant for water purification) by using the photocatalytic properties of pure and Dy- and Yb-codoped BAO. Crystal structure, electron microscopy, and Raman analysis of the autocombustion-synthesized pure and codoped BAO samples revealed significant morphological changes such as increased particle size and stabilization of rod-like structures. UV-vis absorbance measurements confirm the presence of multiple bandgaps in the BAO samples, which is substantiated by X-ray absorption spectroscopy measurements. Photocatalytic degradation studies of methylene blue (MB) dye (with different catalyst concentrations, dopings, and MB dye concentrations) have been carried out by using BAO. The kinetics of the photocatalytic degradation measurements has been explained by the Boltzmann distribution function, and the fastest (in less than 40 min), with more than 99% degradation of MB impurity, is reported here for the first time in BAO compounds. Synthesized BAO samples show excellent cyclic stability, which is essential for their potential applications in environmental remediation. The trade-off between the enhancement of surface area and increased particle size is considered the key parameter for controlling the photocatalytic performance of the BAO catalyst after Dy and Yb codopings.
- Research Article
9
- 10.1016/j.chphi.2024.100647
- May 22, 2024
- Chemical Physics Impact
Synthesis of Cu doped NiO for their antioxidant and photocatalytic properties: Green synthesis using Lycopodium Linn
- Research Article
9
- 10.3390/inorganics10110211
- Nov 16, 2022
- Inorganics
In this study, we report on the preparation of copper oxide/strontium titanate/multi-walled carbon nanotube (CuO/STO/MWCNTs) nanocomposites and their photocatalytic activity for degradation of dye under visible light. The crystalline structures of the nanocomposites were investigated by an X-ray diffraction (XRD) technique, which explored the successful fabrication of CuO/STO/MWCNTs nanocomposites, and the cubic STO phase was formed in all samples. For the morphological study, the transmission electron microscope (TEM) technique was used, which had proved the successful preparation of CuO and STO nanoparticles. The energy dispersive X-ray spectroscopy (EDX), dark field scanning transmission electron microscope (DF-STEM-EDX mapping), and X-ray photoelectron spectra (XPS) analysis were performed to evidence the elemental composition of CuO/STO/MWCNTs nanocomposites. The optical characteristics were explored via UV–Vis diffuse reflectance spectroscopy (DRS) and photoluminescence (PL) techniques. These studies clearly indicate the effect of the presence of CuO and MWCNTs on the visible absorption of the CuO/STO/MWCNTs nanocomposites. The photocatalytic activity of CuO/STO/MWCNTs nanocomposites was evaluated by the degradation of methylene blue (MB) dye under visible light irradiation, following first-order kinetics. Among the different x% CuO/STO/MWCNTs nanocomposites, the 5 wt.% CuO/STO/MWCNTs nanocomposites showed the highest photocatalytic efficiency for the degradation of MB dye. Moreover, the 5% CuO/STO/MWCNTs showed good stability and recyclability after three consecutive photocatalytic cycles. These results verified that the optimized nanocomposites can be used for photocatalytic applications, especially for dye degradation under visible light.