A Review on Bioflocculant-Synthesized Copper Nanoparticles: Characterization and Application in Wastewater Treatment
Abstract
:1. Introduction
2. Different Methods for CuNP Synthesis
2.1. Chemical Approaches
2.2. Physical Methods
2.3. Biological Methods for CuNP Synthesis
2.3.1. Green Synthesis of Copper Nanoparticles Using Plants
2.3.2. Green Synthesis of Copper NPs Using Bacteria
2.3.3. Green Synthesis of Copper Nanoparticles Using Fungi
2.3.4. Green Synthesis of Copper Nanoparticles Using Algae
2.3.5. Green Synthesis of Copper Nanoparticles Using Microbial Bioflocculant
3. Factors Affecting CuNP Synthesis
3.1. Effect of Precursor Concentration
3.2. Effect of pH
3.3. Effect of Temperature
3.4. Effect of Reaction Time on Copper Nanoparticle Production
4. The Characterization of Nanoparticles
4.1. X-ray Diffraction (XRD) Analysis
4.2. Transmission Electron Microscopy (TEM) Analysis
4.3. Scanning Electron Microscope (SEM) Analysis
4.4. Fourier-Transform Infrared Spectroscopy (FT-IR) Analysis
4.5. UV–Vis Spectroscopy Analysis
5. Comparison between the Antibacterial Activity of Copper and Silver Nanoparticles
6. Antimicrobial Activity of Cu Nanoparticles
7. Application of Copper Nanoparticles
7.1. Application of CuNPs for Wastewater Treatment
7.1.1. The Removal of Pollutants by CuNPs Synthesized Using Microbial Bioflocculant and the Greener Method
7.1.2. Heavy Metal Reduction from Water
7.1.3. Removal of Dyes
8. Mechanisms for Wastewater Purification from Heavy Metals and Dyes Using Copper Nanoparticles
9. Toxicity of Copper Nanoparticles
9.1. Toxicity of CuNPs in Animals
9.2. Toxicity of CuNPs in Humans
9.3. Toxicity Mechanisms
10. Methods for Reducing the Toxic Effect of Cu Nanoparticles on the Human Body
10.1. Surface Modification Techniques
10.2. Functionalization with Ligands or Biomolecules
10.3. Controlled Release of Copper Ions
10.4. Targeted Delivery Systems
11. Conclusions and Future Perspectives
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Method Type | Examples | Key Features | Advantages | Disadvantages | Citation |
---|---|---|---|---|---|
Chemical Methods | Liquid-phase reduction, Hydrothermal, Electrochemical | Utilizes reducing agents like sodium borohydride, hydrazine | High yield, controllable particle size | Risk of oxidation requires careful handling | [110] |
Example: CuNPs synthesized using CuSO₄ and NaBH₄ | Simple process, widely used | Simple equipment requirements | Potential toxicity of chemicals involved | [110] | |
Example: CuNPs with PVP stabilization | Stable dispersions | Versatile and adaptable to various applications | Environmental concerns with some reagents | [56] | |
Physical Methods | Mechanical milling, Laser ablation, Physical vapor deposition | In the top-down approach, the bulk material is reduced to the nanoscale | Can produce uniform sizes | Often expensive and complex equipment | [30] |
Example: Laser ablation targeting bulk copper | High precision in size control | Minimal chemical use | Energy-intensive and may require vacuum conditions | [30] | |
Biological Methods | Green synthesis using plant extracts | Eco-friendly, utilizes natural reducing agents | Environmentally sustainable | Variability in yield and particle size | [111] |
Example: Lantana camara extract for CuNP synthesis | Biocompatible materials | Potential for novel properties | Slower synthesis rates compared to chemical methods | [30] |
SI No | Frequency (cm−1) | Allocated Bond | Citation |
---|---|---|---|
1. | 3406 | -OH widening | [103] |
2. | 2857, 2927, and 3562 | C-H and O-H stretch | [149] |
3. | 425, 486, 521, 602, 736, 787, 882, 937, 985, 1087, 1116, and 1634 | Cu-O, C-O bond, C=O, and N-H bond | [150] |
4 | 521 and 602 | Cu-O bond along (101) direction | [151] |
Flocculant | Kind of Effluent | Kind of Contaminants in Water | Water Quality Before Treatment (mg/L) | Water Quality after Treatment (mg/L) | Removal Efficiency (%) |
---|---|---|---|---|---|
CuNPs | Coal mine water | Phosphate | 2.00 | 0.3 | 85 |
Sulfate | 0.55 | 0.13 | 76 | ||
Chemical oxygen demand (COD) | 154 | 11.2 | 93 | ||
Biological oxygen demand (BOD) | 123.2 | 5.0 | 96 | ||
Polyamine flocculant | Phosphate | 2.00 | 1.3 | 76 | |
Sulfate | 0.55 | 0.32 | 63 | ||
Chemical oxygen demand (COD) | 154 | 32.4 | 89 | ||
Biological oxygen demand (BOD) | 123.2 | 23.6 | 73 |
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Nkosi, N.C.; Basson, A.K.; Ntombela, Z.G.; Dlamini, N.G.; Pullabhotla, R.V.S.R. A Review on Bioflocculant-Synthesized Copper Nanoparticles: Characterization and Application in Wastewater Treatment. Bioengineering 2024, 11, 1007. https://doi.org/10.3390/bioengineering11101007
Nkosi NC, Basson AK, Ntombela ZG, Dlamini NG, Pullabhotla RVSR. A Review on Bioflocculant-Synthesized Copper Nanoparticles: Characterization and Application in Wastewater Treatment. Bioengineering. 2024; 11(10):1007. https://doi.org/10.3390/bioengineering11101007
Chicago/Turabian StyleNkosi, Nkanyiso C., Albertus K. Basson, Zuzingcebo G. Ntombela, Nkosinathi G. Dlamini, and Rajasekhar V. S. R. Pullabhotla. 2024. "A Review on Bioflocculant-Synthesized Copper Nanoparticles: Characterization and Application in Wastewater Treatment" Bioengineering 11, no. 10: 1007. https://doi.org/10.3390/bioengineering11101007
APA StyleNkosi, N. C., Basson, A. K., Ntombela, Z. G., Dlamini, N. G., & Pullabhotla, R. V. S. R. (2024). A Review on Bioflocculant-Synthesized Copper Nanoparticles: Characterization and Application in Wastewater Treatment. Bioengineering, 11(10), 1007. https://doi.org/10.3390/bioengineering11101007