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Hard meets soft: tuning binary ferrofluids

  • Malika Khelfallah*
  • , Ekaterina V. Novak
  • , Andrey A. Kuznetsov
  • , Deniz Mostarac
  • , Niéli Daffé
  • , Marcin Sikora
  • , Sophie Neveu
  • , Jovana Zečević
  • , Johannes D. Meeldijk
  • , Dario Taverna
  • , Philippe Sainctavit
  • , Mauro Rovezzi
  • , Hebatalla Elnaggar
  • , Enzo Bertuit
  • , Nicolas Mille
  • , Rachid Belkhou
  • , Vincent Dupuis
  • , Claire Carvallo
  • , Amélie Juhin*
  • , Sofia S. Kantorovich*
  • *Corresponding author for this work
  • Sorbonne Université
  • Ural Federal University
  • University of Vienna
  • Synchrotron Soleil
  • AGH University of Science and Technology
  • European Synchrotron Radiation Facility
  • Université Grenoble Alpes
  • extern

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

We study binary ferrofluids composed of multicore “nanoflowers” of magnetically hard CoFe2O4 and magnetically soft MnFe2O4, as a way to optimise heat dissipation while suppressing aggregation–properties essential for biomedical applications. Bulk magnetometry and molecular dynamics simulations were combined to elucidate their behaviour. Experiments show wasp-waisted hysteresis, composition-dependent coercivity, and strong protocol dependence (field cooling). Simulations reproduce these trends and reveal the underlying structure–property coupling: (i) in an applied magnetic field, CoFe2O4 forms chains that dominate collective switching; (ii) adding MnFe2O4 “poisons” these chains—shortening and de-branching clusters—thereby lowering coercivity and loop area relative to a weighted superposition of the individual component responses without interactions; (iii) dipolar coupling reciprocally hardens the magnetically soft phase and softens the magnetically hard phase even without large-scale aggregation; and (iv) at higher total volume fraction (ϕ = 0.1) magnetically soft particles still suppress chain growth, reducing mean cluster size by up to an order of magnitude while keeping heating-relevant hysteresis close to Stoner–Wohlfarth expectations. These results establish composition-controlled microstructure as a means to decouple thermal output from aggregation: CoFe2O4 : MnFe2O4 mixtures can be tuned to enhance loss mechanisms while mitigating aggregation, offering a route to binary ferrofluids optimized for magnetic hyperthermia and drug delivery.

Original languageEnglish
Pages (from-to)11724-38
Number of pages15
JournalNanoscale
Volume18
Issue number22
Early online date2026
DOIs
Publication statusPublished - 11 Jun 2026

Bibliographical note

Publisher Copyright:
This journal is © The Royal Society of Chemistry, 2026

Funding

This research was funded in part by the Austrian Science Fund (FWF) [10.55776/PAT4120124, available via https://www.fwf.ac.at/en/discover/research-radar ]. E. V. N. was partially supported by the RSF Grant 25-22-00270. A. J. acknowledges financial support from the French ANR under grant agreement 17-410 CE30-0010-01. The authors acknowledge the Synchrotron SOLEIL (proposal 20220562) and the ESRF for provision of beamtime. D. M. acknowledges financial support by the Austrian Science Fund (FWF) grant J 4915-N. A. A. K. acknowledges financial support by FWF grant PAT 4307624. H. E. acknowledges the finance of NWO Rubicon Fellowship (Project No. 019.201EN.010). Cryo-TEM research was performed at the time within the Inorganic Chemistry and Catalysis group at Utrecht University, which has since been reorganised. Computer simulations were performed at the Austrian Scientific Computing Cluster VSC-5.

FundersFunder number
Austrian Science Fund
Agence Nationale de la RecherchePAT 4307624, J 4915-N, 17-410 CE30-0010-01
NWO019.201EN.010
Russian Science Foundation25-22-00270

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