Submitted:
30 August 2024
Posted:
30 August 2024
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Abstract

Keywords:
1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Grape Marc Extract Preparation
2.3. Synthesis of Green Gold Nanoparticles
2.4. Modified PVDF Membrane Preparation
2.5. Characterization Studies
2.6. Photocatalytic Activity and Kinetic Studies of Modified Membrane
2.7. Reusability of Modified Membrane in MB Degradation
3. Results and Discussion
3.1. Synthesis and Characterization of Green Gold Nanoparticles
3.2. Dip Coating of PVDF Membrane in GM-AuNPs Dispersion
3.3. Photocatalytic Studies
3.4. Modified Membrane Behavior with Other Organic Pollutants
3.5. Reusability and Stability
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Alprol, A.E.; Mansour A.T.; Abdelwahab, A.M.; Ashour, M., Advances in Green Synthesis of Metal Oxide Nanoparticles by Marine Algae for Wastewater Treatment by Adsorption and Photocatalysis Techniques. Catalysts 2023, 13, 888. [CrossRef]
- Policarpo Tonelli, F.M.; Santos Silva, C.; Silva Delgado, V.M.; Policarpo Tonelli, F.C. Algae-based green AgNPs, AuNPs, and FeNPs as potential nanoremediators. Green Process. and Synth. 2023, 12, 20230008. [CrossRef]
- Din, M.I.; Khalid, R.; Najee, J.; Hussain, Z. Fundamentals and photocatalysis of methylene blue dye using various nanocatalytic assemblies- a critical review. J. Clean. Prod. 2021, 298, 126567. [CrossRef]
- Omran, B.A.; Baek, K.H. Valorization of agro-industrial biowaste to green nanomaterials for wastewater treatment: Approaching green chemistry and circular economy principles. J.Environ. Manage. 2022, 311, 114806. [CrossRef]
- Del Sole, R.; Fogel, A.A.; Somin, V.A.; Vasapollo, G.; Mergola, L. Evaluation of Effective Composite Biosorbents Based on Wood Sawdust and Natural Clay for Heavy Metals Removal from Water. Materials 2023, 16, 5322. [CrossRef]
- Mamyachenkov, S.V.; Adryshev, A.K.; Seraya, N.V.; Khairullina, A.A.; Daumova, G.K. Nanostructured complex sorbent for cleaning heavy metal ions from industrial effluent. Metallurgist 2017, 61, 615–623. [CrossRef]
- Li, R.; Wang, B.; Niu, A.; Cheng, N.; Chen, M.; Zhang, X.; Yu Z.; Wang, S. Application of biochar immobilized microorganisms for pollutants removal from wastewater: A review. Sci. Total Environ. 2022, 837, 155563. http://dx.doi.org/10.1016/j.scitotenv.2022.155563.
- Del Sole, R.; Maggio, A.; Mergola, L. Green grape marc biosorbents preparation for mercury removal in aqueous media. Chem. Ind. Chem. Eng. Q. 2023, 29 (1) 1−10. [CrossRef]
- Arias Arias, F.E.; Beneduci, A.; Chidichimo, F.; Furia, E.; Straface, S. Study of the adsorption of mercury (II) on lignocellulosic materials under static and dynamic conditions. Chemosphere 2017 180, 11-23. [CrossRef]
- Mora Alvarez, N.M.; Pastrana, J.M.; Lagos, Y.; Lozada, J.J. Evaluation of mercury (Hg2+) adsorption capacity using exhausted coffee waste. Sustain. Chem. Pharm. 2018, 10, 60-70. [CrossRef]
- Husien, S.; El-taweel, R. M.; Salim A.I.; Fahim, I. S.; Said L.A.; Radwan, A.G. Review of activated carbon adsorbent material for textile dyes removal: Preparation, and modelling. Curr. Res. Green Sustain. Chem. 2022, 5, 100325. [CrossRef]
- Seoudi, R.; Al-Marhab, F.A. Synthesis, characterization and photocatalytic application of different sizes of gold nanoparticles on 4-Nitrophenol. WJNSE, 2016, 6, 120. http://dx.doi.org/10.4236/wjnse.2016.63012.
- Silva-Holguín, P.N.; Garibay-Alvarado, J.A.; Reyes-López, S.Y. Silver nanoparticles: multifunctional tool in environmental water remediation. Materials 2024, 17, 1939. [CrossRef]
- Palani,G.; Trilaksana, H.; Merlyn Sujatha, R.; Kannan, K.; Rajendran, S.; Korniejenko, K. ; Nykiel, M.; Uthayakumar, M. Silver Nanoparticles for waste water management. Molecules, 2023, 28, 3520. [CrossRef]
- Ferrari, E. Gold nanoparticle-based plasmonic biosensors. Biosensors 2023, 13, 411. [CrossRef]
- Kumari, H.; Suman, S.; Ranga, R.; Chahal, S. Devi, S.; Sharma, S.; Kumar, S.; Kumar, P.; Kumar, S.; Kumar A.; Parmar, R,. A Review on photocatalysis used for wastewater treatment: dye degradation. Water Air Soil. Pollut. 2023, 234, 349. [CrossRef]
- Huggias, S.; Serradell,M.A.; Azcárate, J.C.; Casella, M.L.; Peruzzo P.J.; Bolla, P.A. Catalytic performance in nitroarene reduction of nanocatalyst based on noble metal nanoparticles supported on polymer/s-layer protein hybrids. J. Phys. Chem. B, 2024, 128, 4809. [CrossRef]
- Mergola, L.; Carbone, L.; Stomeo, T.; Del Sole, R. Green synthesis of iridium nanoparticles from winery waste and their catalytic effectiveness in water decontamination. Materials, 2023, 16, 2060. [CrossRef]
- Lizundia, E.; Luzi, F.; Puglia, D. Organic waste valorisation towards circular and sustainable biocomposites. Green Chem. 2022, 24, 5429. [CrossRef]
- Baiocco, D.; Lavecchia, R.; Natali, S.; Zuorro, A. Production of Metal Nanoparticles by Agro-Industrial Wastes: A Green Opportunity for Nanotechnology. Chem. Eng. Trans. 2016, 47, 67. [CrossRef]
- Cui, M.; Huang,X.; Zhang, X.; Xie, Q.; Yang, D. Ultra-small iridium nanoparticles as active catalysts for the selective and efficient reduction of nitroarenes. New J.Chem. 2020, 44, 18274. [CrossRef]
- Bordiwala, R.V. Green synthesis and Applications of Metal Nanoparticles.- A Review Article. Results Chem. 2023, 5, 100832. [CrossRef]
- Song, W.C.; Kim, B.; Park, S.Y.; Park, G.; Oh, J.W. Biosynthesis of silver and gold nanoparticles using Sargassum horneri extract as catalyst for industrial dye degradation. Arab. J. Chem. 2022, 15, 104056. [CrossRef]
- Kulkarni, R.; Harip, S.; Kumar, A.R.; Deobagkar, D.; Zinjarde, S. Peptide stabilized gold and silver nanoparticles derived from the mangrove isolate Pseudoalteromonas lipolytica mediate dye decolorization. Colloids Surf. A: Physicochem. Eng. Asp. 2018, 555, 180. . [CrossRef]
- Rajput, G.; Pandya, N. Catalytic Degradation of Methylene Blue Using Gold Nanoparticles Capped by Polyoxyethylene Cholesteryl Ether. Adv. Sci. Eng. Med. 2020, 12, 1236. [CrossRef]
- Muhlack, R.A.; Potumarthi, R.; Jeffery, D.W. Sustainable wineries through waste valorisation: A review of grape marc utilisation for value-added products. Waste Manage. 2018, 72, 99. [CrossRef]
- Sun, J.; Zhang, Z.; Liu, C.; Dai, X.; Zhou, W.; Jiang, K.; Zhang, T.; Yin, J.; Gao, J.; Yin H.; Li, H. Continuous in situ portable SERS analysis of pollutants in water and air by a highly sensitive gold nanoparticle-decorated PVDF substrate. Anal. Bioanal. Chem. 2021, 413, 5469. [CrossRef]
- Tran, H.D.; Nguyen, D.Q.; Do, P.T.; Tran, U.N.P. Kinetics of photocatalytic degradation of organic compounds: a mini-review and new approach. RSC Advances 2023, 13, 16915. [CrossRef]
- Iqbal, A.; Ibrahim, N.H.; Rahman, N.R.A.; Saharudin, K.A.; Adam, F.; Sreekantan, S.; Yusop, R.M.; Jaafar, N.F.; Wilson, L. D. ZnO Surface Doping to Enhance the Photocatalytic Activity of Lithium Titanate/TiO2 for Methylene Blue Photodegradation under Visible Light Irradiation. Surfaces 2020,3, 301. [CrossRef]
- Basak, S.; Ali, S.; Das, D.; Sikdar, S.; Roy, M.N. Synthesis, Characterization and Visible Light Induced Photo-Degradation of Acid Orange II Dye in Aqueous Medium using a Novel Synthesized Al2MoZnO7 Nanocomposite. J. Adv. Chem. Sci. 2020, 6(2), 676. [CrossRef]
- Singh, R.K.; Behera, S.S.; Singh, K.R.; Mishra, S.; Panigrahi, B.; Sahoo, T.R.; Parhia, P.K.; Mandala, D. Biosynthesized gold nanoparticles as photocatalysts for selective degradation of cationic dye and their antimicrobial activity. J. Photoch. Photobio. A Chem. 2020, 400, 112704. [CrossRef]
- Fiévet, S. Ammar-Merah, R. Brayner, F. Chau, M. Giraud, F. Mammeri, J.Peron, J.-Y. Piquemal, L. Sicard and G. Viau, The polyol process: a unique method for easy access to metal nanoparticles with tailored sizes, shapes and compositions. Chem. Soc. Rev. 2018, 47, 5187–5233. [CrossRef]
- Rosas-García, V.M.; Rodríguez-Nava, O.; Cuenca-Álvarez, R.; Garrido-Hernandez, A.; García-Hernández, M.; Morales-Ramírez, A.J. Photocatalytic Degradation of Methylene Blue (MB) and Methyl Orange (MO) by the Highly Oxidative Properties of SnO2 Sb2O3 Particles. Mater. Trans. 2022, 63(8), 1188. [CrossRef]
- Lyu, P.; Espinoza, R.; Nguyen, S.C. Photocatalysis of Metallic Nanoparticles: Interband vs Intraband Induced Mechanisms. J. Phys. Chem. C 2023, 127, 15685−15698. [CrossRef]
- Baumberg, J.J. Hot electron science in plasmonics and catalysis: what we argue about. Faraday Discuss. 2019, 214, 501–511. [CrossRef]
- Wang, X.Q.; Han, S.F.; Zhang, Q.W.; Zhang, N.; Zhao, D.D. Photocatalytic oxidation degradation mechanism study of methylene blue dye waste water with GR/iTO2. MATEC Web Conf. 2018, 238, 03006. [CrossRef]













| MB concentration (mg L-1) | Degradation % |
|---|---|
| 5.6 | 99.5 |
| 15 | 86.8 |
| 30 | 73.8 |
| 40 | 63.7 |
| Polluttants | Pseudo-first-order | Pseudo-second-order | ||
| k1 (min-1) | R2 | K2 (L mg-1 min-1) | R2 | |
| MB | 0.0443 | 0.9884 | 0.8340 | 0.5179 |
| RO | 0.0043 | 0.7359 | 0.0822 | 0.9974 |
| 4NP | 0.0010 | 0.8184 | 0.1640 | 0.9991 |
| MO | 0.0003 | 0.3387 | 11.891 | 0.9994 |
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