Structural and magnetic properties of iron nanowires and iron nanoparticles fabricated through a reduction reaction

Marcin Krajewski, Wei Syuan Lin, Hong Ming Lin, Katarzyna Brzozka, Sabina Lewinska, Natalia Nedelko, Anna Slawska-Waniewska, Jolanta Borysiuk and Dariusz Wasik
Beilstein J. Nanotechnol. 2015, 6, 1652–1660. https://doi.org/10.3762/bjnano.6.167

Cite the Following Article

Structural and magnetic properties of iron nanowires and iron nanoparticles fabricated through a reduction reaction
Marcin Krajewski, Wei Syuan Lin, Hong Ming Lin, Katarzyna Brzozka, Sabina Lewinska, Natalia Nedelko, Anna Slawska-Waniewska, Jolanta Borysiuk and Dariusz Wasik
Beilstein J. Nanotechnol. 2015, 6, 1652–1660. https://doi.org/10.3762/bjnano.6.167

How to Cite

Krajewski, M.; Lin, W. S.; Lin, H. M.; Brzozka, K.; Lewinska, S.; Nedelko, N.; Slawska-Waniewska, A.; Borysiuk, J.; Wasik, D. Beilstein J. Nanotechnol. 2015, 6, 1652–1660. doi:10.3762/bjnano.6.167

Download Citation

Citation data can be downloaded as file using the "Download" button or used for copy/paste from the text window below.
Citation data in RIS format can be imported by all major citation management software, including EndNote, ProCite, RefWorks, and Zotero.

Citations to This Article

Up to 20 of the most recent references are displayed here.

Scholarly Works

  • Alrammah, F.; Xu, L.; Patel, N.; Kontis, N.; Rosado, A.; Gu, T. Conductive magnetic nanowires accelerated electron transfer between C1020 carbon steel and Desulfovibrio vulgaris biofilm. The Science of the total environment 2024, 925, 171763. doi:10.1016/j.scitotenv.2024.171763
  • Pommella, A.; Griffiths, P.; Coativy, G.; Dalmas, F.; Ranoo, S.; Schmidt, A. M.; Méchin, F.; Bernard, J.; Zinn, T.; Narayanan, T.; Meille, S.; Baeza, G. P. Fate of Magnetic Nanoparticles during Stimulated Healing of Thermoplastic Elastomers. ACS nano 2023, 17, 17394–17404. doi:10.1021/acsnano.3c05440
  • Krajewski, M.; Liou, S.-C.; Kubacki, J. Investigation of iron oxide shell and iron core in magnetically-assisted synthetized wire-like nanochains. Nanotechnology 2023, 34, 325701. doi:10.1088/1361-6528/acd38a
  • Ortega-Nieto, C.; Losada-Garcia, N.; Pessela, B. C.; Domingo-Calap, P.; Palomo, J. M. Design and Synthesis of Copper Nanobiomaterials with Antimicrobial Properties. ACS bio & med chem Au 2023, 3, 349–358. doi:10.1021/acsbiomedchemau.2c00089
  • Krajewski, M.; Witowski, A. M.; Liou, S.-C.; Maj, M.; Tokarczyk, M.; Wasik, D. Poly(Vinylidene Fluoride-co-Hexafluoropropylene) Films Filled in Iron Nanoparticles for Infrared Shielding Applications. Macromolecular rapid communications 2023, 44, e2300038. doi:10.1002/marc.202300038
  • Pavoski, G.; Botelho Junior, A. B.; Chaves, R. M.; Maraschin, T.; Oviedo, L. R.; Martins, T. A. G.; da Silva, W. L.; Bertuol, D. A.; Espinosa, D. C. R. Nanotechnology and recycling, remanufacturing, and reusing battery. Nano Technology for Battery Recycling, Remanufacturing, and Reusing; Elsevier, 2022; pp 53–78. doi:10.1016/b978-0-323-91134-4.00022-4
  • Krajewski, M.; Liou, S.-C.; Jurkiewicz, K.; Brzózka, K.; Chiou, W.-A.; Kubacki, J.; Burian, A. Glass-like structure of iron-nickel nanochains produced by magnetic-field-induced reduction reaction with sodium borohydride. Physical chemistry chemical physics : PCCP 2021, 24, 326–335. doi:10.1039/d1cp04411g
  • Dey, S.; Sun, S.; Mehta, N. S. Carbon monoxide catalytic oxidation over various iron-based nanoparticles at ambient conditions: A Review. Carbon Capture Science & Technology 2021, 1, 100013. doi:10.1016/j.ccst.2021.100013
  • Palomo, J. M. Iron Catalysis - Design of Iron Nanostructured Catalysts. Iron Catalysis; WORLD SCIENTIFIC (EUROPE), 2021; pp 1–34. doi:10.1142/9781786349620_0001
  • Mukhtar, A.; Wu, K.; Cao, X.; Gu, L. Magnetic nanowires in biomedical applications. Nanotechnology 2020, 31, 433001. doi:10.1088/1361-6528/aba1ba
  • Krajewski, M.; Tokarczyk, M.; Stefaniuk, T.; Slominska, H.; Małolepszy, A.; Kowalski, G.; Lewińska, S.; Ślawska-Waniewska, A. Magnetic-field-induced synthesis of amorphous iron-nickel wire-like nanostructures. Materials Chemistry and Physics 2020, 246, 122812. doi:10.1016/j.matchemphys.2020.122812
  • Krajewski, M.; Liou, S.-C.; Chiou, W.-A.; Tokarczyk, M.; Małolepszy, A.; Płocińska, M.; Witecka, A.; Lewińska, S.; Ślawska-Waniewska, A. Amorphous FexCo1–x Wire-like Nanostructures Manufactured through Surfactant-Free Magnetic-Field-Induced Synthesis. Crystal Growth & Design 2020, 20, 3208–3216. doi:10.1021/acs.cgd.0c00070
  • Nemati, Z.; Um, J.; Kouhpanji, M. R. Z.; Zhou, F.; Gage, T. E.; Shore, D.; Makielski, K. M.; Donnelly, A. J.; Alonso, J. Magnetic Isolation of Cancer-Derived Exosomes Using Fe/Au Magnetic Nanowires. ACS Applied Nano Materials 2020, 3, 2058–2069. doi:10.1021/acsanm.0c00263
  • Cao, W.; Xia, S.; Jiang, X.; Appold, M.; Opel, M.; Plank, M.; Schaffrinna, R.; Kreuzer, L. P.; Yin, S.; Gallei, M.; Schwartzkopf, M.; Roth, S. V.; Müller-Buschbaum, P. Self-Assembly of Large Magnetic Nanoparticles in Ultrahigh Molecular Weight Linear Diblock Copolymer Films. ACS applied materials & interfaces 2020, 12, 7557–7564. doi:10.1021/acsami.9b20905
  • Revathy, R.; Varma, M. R.; Surendran, K. P. Effect of morphology and ageing on the magnetic properties of nickel nanowires. Materials Research Bulletin 2019, 120, 110576. doi:10.1016/j.materresbull.2019.110576
  • Nguyen, M. T.; Yu, K.; Tokunaga, T.; Boonyaperm, K.; Kheawhom, S.; Arita, M.; Yonezawa, T. Green Synthesis of Size-Tunable Iron Oxides and Iron Nanoparticles in a Salt Matrix. ACS Sustainable Chemistry & Engineering 2019, 7, 17697–17705. doi:10.1021/acssuschemeng.9b03950
  • Mukhtar, A.; Cao, X.; Mehmood, T.; Wang, D.-s.; Wu, K. Structural characterization of self-assembled chain like Fe-FeOx Core shell nanostructure. Nanoscale research letters 2019, 14, 308. doi:10.1186/s11671-019-3128-2
  • Liou, S.-C.; Krajewski, M.; Chiou, W.-A.; Tokarczyk, M.; Kowalski, G. TEM Studies of Fe1-xNix Nanowires by Magnetic-Field-Induced Synthesis. Microscopy and Microanalysis 2019, 25, 2194–2195. doi:10.1017/s143192761901170x
  • Essajai, R.; Chafi, F. Z.; Benhouria, Y.; Hassani, A.; Qjani, M.; Mzerd, A.; Hassanain, N. Structural and magnetic properties of iron nanoparticles: insights from Monte-Carlo and molecular-statics simulations. Materials Research Express 2019, 6, 095097. doi:10.1088/2053-1591/ab30a6
  • Essajai, R.; Benhouria, Y.; Rachadi, A.; Qjani, M.; Mzerd, A.; Hassanain, N. Shape-dependent structural and magnetic properties of Fe nanoparticles studied through simulation methods. RSC advances 2019, 9, 22057–22063. doi:10.1039/c9ra03047f

Patents

  • CHIKU SHINICHIRO; SEKIJIMA TAKENORI. Magnetic structural body. US 11862371 B2, Jan 2, 2024.
  • CHIKU SHINICHIRO; SEKIJIMA TAKENORI. MAGNETIC STRUCTURE. WO 2019160165 A1, Aug 22, 2019.
Other Beilstein-Institut Open Science Activities