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Hierarchical magnetic self-assembly of few-nanometer rutile TiO2 particles via magnetron sputtering

  • Jarkko Etula
  • , Camilla Tossi*
  • , Niklas Wester
  • , Daryna Ihnatiuk
  • , Sami Sainio
  • , Kai Arstila
  • , Timo Sajavaara
  • , Ilkka Tittonen
  • , Jari Koskinen
  • *Corresponding author for this work

Research output: Contribution to journalArticleScientificpeer-review

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Abstract

Few nanometer-sized rutile TiO2 nanoparticles were synthesized at room temperature, using conventional reactive magnetron sputtering gas aggregation, with a large permanent magnet placed under the deposition substrate. The presence of the magnet caused the rutile TiO2 nanoparticles to self-assemble into a branching, hierarchical particle agglomerate structure, with a large surface area comprising various pore sizes. These structural features appear to be due to ferromagnetism induced by surface oxygen vacancies in anatase and rutile TiO2, or to electrostatic charging effects. The resulting chain-like structures present themselves as a film 10 micrometers in thickness. As observed by helium ion microscopy, and scanning as well as transmission electron microscopy, this structure is highly porous featuring remarkably high specific surface areas, quantified as 650 m2 g−1 by BET nitrogen absorption measurement. The elemental composition, chemical bonding, and purity of the collected rutile TiO2 nanoparticles were analyzed by TOF-ERDA, XAS, and TEM EDS, as well as FTIR, UV-Vis, and Raman spectroscopies, confirming the prevalence of the rutile phase. This highly porous and easily accessible structure was able to photocatalytically degrade dyes at rates compatible with the typical photocatalytic performance of rutile TiO2. We believe that upon further development, this synthesis technique holds great potential for the selective synthesis of high-purity few-nanometer-sized rutile without the need for high temperatures, providing a facile fabrication route for a reference model system in photocatalytic conversion reactions.

Original languageEnglish
Pages (from-to)6764-6774
Number of pages11
JournalMaterials Advances
Volume6
Issue number19
DOIs
Publication statusPublished - 29 Sept 2025
MoE publication typeA1 Journal article-refereed

Funding

The authors acknowledge the provision of facilities by RawMatters Finland Infrastructure (RAMI, No. 292884). C. T., D. I. and I. T. acknowledges the Academy of Finland (projects 285972 and 319018) and C. T. thanks the Vilho, Yriö ja Kalle Väisälä Foundation grant issued by the Finnish Academy of Sciences and Letters.

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