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Spinning Disk Reactor Nano Production Intensification

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Nanomaterials 2020, 10, 1321 13 of 15 10. Stoller, M.; Di Palma, L.; Vuppala, S.; Verdone, N.; Vilardi, G. Process Intensification Techniques for the Production of Nano- and Submicronic Particles for Food and Medical Applications. Curr. Pharm. Des. 2018, 24, 2329–2338. [CrossRef] 11. Kerssemakers, A.A.; Doménech, P.; Cassano, M.; Yamakawa, C.K.; Dragone, G.; Mussatto, S.I. Production of Itaconic Acid from Cellulose Pulp: Feedstock Feasibility and Process Strategies for an Efficient Microbial Performance. Energies 2020, 13, 1654. [CrossRef] 12. Pignatello, R.; Impallomeni, G.; Cupri, S.; Puzzo, G.; Curcio, C.; Rizzo, M.; Guglielmino, S.; Ballistreri, A. Unsaturated Poly (Hydroxyalkanoates) for the Production of Nanoparticles and the Effect of Cross-Linking on Nanoparticle Features. Materials 2019, 12, 868. [CrossRef] [PubMed] 13. Gebremariam, S.N.; Hvoslef-Eide, T.; Terfa, M.T.; Marchetti, J.M. Techno-Economic Performance of Different Technological Based Bio-Refineries for Biofuel Production. Energies 2019, 12, 3916. [CrossRef] 14. Li, C.; Yue, X.; Yang, J.; Yang, Y.; Gu, H.; Peng, W. Catalytic Fast Pyrolysis of Forestry Wood Waste for Bio-Energy Recovery Using Nano-Catalysts. Energies 2019, 12, 3972. [CrossRef] 15. Santos, S.; Nobre, L.; Gomes, J.; Puna, J.; Quinta-Ferreira, R.; Bordado, J. Soybean Oil Transesterification for Biodiesel Production with Micro-Structured Calcium Oxide (CaO) from Natural Waste Materials as a Heterogeneous Catalyst. Energies 2019, 12, 4670. [CrossRef] 16. Di Palma, L.; Medici, F.; Vilardi, G. Artificial aggregate from non metallic automotive shredder residue. Chem. Eng. Trans. 2015, 43, 1723–1728. [CrossRef] 17. Ibrahim, E.; Zhang, M.; Zhang, Y.; Hossain, A.; Qiu, W.; Chen, Y.; Wang, Y.; Wu, W.; Sun, G.; Li, B. Green-Synthesization of Silver Nanoparticles Using Endophytic Bacteria Isolated from Garlic and Its Antifungal Activity against Wheat Fusarium Head Blight Pathogen Fusarium graminearum. Nanomaterials 2020, 10, 219. [CrossRef] 18. Vilardi, G.; di Palma, L.; Verdone, N. A physical-based interpretation of mechanism and kinetics of Cr(VI) reduction in aqueous solution by zero-valent iron nanoparticles. Chemosphere 2019, 220, 590–599. [CrossRef] 19. Vilardi, G. Mathematical modelling of simultaneous nitrate and dissolved oxygen reduction by Cu-nZVI using a bi-component shrinking core model. Powder Technol. 2018, 343, 613–618. [CrossRef] 20. Vilardi, G. Bimetallic nZVI-induced chemical denitrification modelling using the shrinking core model. Chem. Eng. Trans. 2018, 70, 235–241. 21. Chinh, V.D.; Broggi, A.; di Palma, L.; Scarsella, M.; Speranza, G.; Vilardi, G.; Thang, P.N. XPS Spectra Analysis of Ti2+, Ti3+Ions and Dye Photodegradation Evaluation of Titania-Silica Mixed Oxide Nanoparticles. J. Electron. Mater. 2017, 47, 2215–2224. [CrossRef] 22. Vilardi, G.; di Palma, L.; Verdone, N. Competitive Reaction Modelling in Aqueous Systems: The Case of Contemporary Reduction of Dichromates and Nitrates by nZVI. Chem. Eng. Trans. 2017, 60, 175–180. [CrossRef] 23. Muradova, G.G.; Gadjieva, S.R.; di Palma, L.; Vilardi, G. Nitrates Removal by Bimetallic Nanoparticles in Water. Chem. Eng. Trans. 2016, 47, 205–210. [CrossRef] 24. Marchetti, A.; Stoller, M. On the Micromixing Behavior of a Spinning Disk Reactor for Metallic Cu Nanoparticles Production. Appl. Sci. 2019, 9, 3311. [CrossRef] 25. Vilardi, G.; Verdone, N. Production of metallic iron nanoparticles in a baffled stirred tank reactor: Optimization via computational fluid dynamics simulation. Particuology 2019, in press. [CrossRef] 26. Peng, C.; Tong, H.; Yuan, P.; Sun, L.; Jiang, L.; Shi, J. Aggregation, Sedimentation, and Dissolution of Copper Oxide Nanoparticles: Influence of Low-Molecular-Weight Organic Acids from Root Exudates. Nanomaterials 2019, 9, 841. [CrossRef] 27. Vilardi, G.; Parisi, M.; Verdone, N. Simultaneous aggregation and oxidation of nZVI in Rushton equipped agitated vessel: Experimental and modelling. Powder Technol. 2019, 353, 238–246. [CrossRef] 28. Yusof, N.A.A.; Zain, N.M.; Pauzi, N. Synthesis of ZnO nanoparticles with chitosan as stabilizing agent and their antibacterial properties against Gram-positive and Gram-negative bacteria. Int. J. Biol. Macromol. 2019, 124, 1132–1136. [CrossRef] 29. Hight-Huf, N.; Kang, J.H.; Bisnoff, P.; Sundararajan, S.; Thompson, T.; Barnes, M.; Hayward, R.C.; Emrick, T. Polymer Zwitterions for Stabilization of CsPbBr3 Perovskite Nanoparticles and Nanocomposite Films. Angew. Chemie Int. Ed. 2020. [CrossRef]

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