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Structure-property coupling in cracked iron oxide nanoparticles: Synthesis conditions, magnetic properties, MRI relaxivity and biocompatibility

Authorized Users Only
2026
Authors
Đošić, Marko
Panjan, Matjaž
Čekada, Miha
Lazović, Jelena
Tadić, Marin
Article (Accepted Version)
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Abstract
This study reports a simple and environmentally friendly synthesis of hematite nanoparticles with tunable magnetic properties, including quasi-superparamagnetic behavior and a suppressed Morin transition. The hematite nanoparticles were synthesized via high-temperature hydrolysis of aqueous FeCl3, with synthesis durations of 3 h (sample S1) and 6 h (sample S2). XRD analyses confirmed the formation of phase-pure hematite, while TEM imaging revealed a distinctive cracked-spherical morphology with an average diameter of ≈ 35 nm and surface cracks 1–2 nm wide. The critical size for superparamagnetism and the suppression of the Morin transition below 150 K in hematite (α-Fe2O3) remain insufficiently studied. Magnetic properties revealed a size- and surface-dependent magnetic behavior. Sample S1 exhibited quasi-superparamagnetic behavior, characterized by a high blocking temperature (TB ≈ 275 K) and an irreversibility temperature exceeding room temperature (Tirr > 300 K). In contrast, sample... S2 displayed a strongly suppressed Morin transition at TM ≈ 130 K. These results show that hematite nanoparticles ≈ 35 nm in size approach the superparamagnetic threshold. We attribute the modified magnetic response to enhanced surface disorder and strain associated with the cracked morphology, supported by XRD strain analysis (Williamson–Hall), HRTEM evidence of structural disorder and comparative discussion with non-cracked hematite. In addition to their tunable magnetic properties, the hematite nanoparticles demonstrated a promising potential for biomedical applications, exhibiting transverse and longitudinal MRI relaxivities (r2 ≈ 4.58 mM−1s−1 and r1 ≈ 0.075 mM−1s−1, respectively) and low cytotoxicity. This work highlights the importance of surface morphology and particle size in controlling the magnetic behavior of hematite nanostructures and their potential use as MRI contrast agents.

Keywords:
Hematite (α-Fe2O3) / Iron oxide / Magnetic properties / Superparamagnetism (SPION) / Surface/size effects / Synthesis
Source:
Journal of Alloys and Compounds, 2026, 1053, 186216-
Funding / projects:
  • Ministry of Science, Technological Development and Innovation of the Republic of Serbia, institutional funding - 200017 (University of Belgrade, Institute of Nuclear Sciences 'Vinča', Belgrade-Vinča) (RS-MESTD-inst-2020-200017)
  • Slovenian Research Agency (ARIS program P2–0082)
  • DOMINANTMAG - Development of epsilon-iron oxide-based nanocomposites: Towards the next-generation rare-earth-free magnets (RS-ScienceFundRS-Prizma2023_PM-7551)
  • Serbian-German bilateral project 2025–2026 - contract No: 001545243 2025 13440 003 000 000 001 03 010
Note:
  • This is the peer-reviewed version of the article: Djošić, M., Panjan, M., Čekada, M., Lazović, J., & Tadić, M. (2026). Structure-property coupling in cracked iron oxide nanoparticles: synthesis conditions, magnetic properties, MRI relaxivity and biocompatibility. Journal of Alloys and Compounds, 186216. http://dx.doi.org/10.1016/j.jallcom.2026.186216
Related info:
  • Referenced by
    https://vinar.vin.bg.ac.rs/handle/123456789/16103
  • Referenced by
    http://dx.doi.org/10.1016/j.jallcom.2026.186216

DOI: 10.1016/j.jallcom.2026.186216

ISSN: 0925-8388

Scopus: 2-s2.0-105027897375
[ Google Scholar ]
URI
https://vinar.vin.bg.ac.rs/handle/123456789/16117
Collections
  • Radovi istraživača
  • DOMINANTMAG
Institution/Community
Vinča
TY  - JOUR
AU  - Đošić, Marko
AU  - Panjan, Matjaž
AU  - Čekada, Miha
AU  - Lazović, Jelena
AU  - Tadić, Marin
PY  - 2026
UR  - https://vinar.vin.bg.ac.rs/handle/123456789/16117
AB  - This study reports a simple and environmentally friendly synthesis of hematite nanoparticles with tunable magnetic properties, including quasi-superparamagnetic behavior and a suppressed Morin transition. The hematite nanoparticles were synthesized via high-temperature hydrolysis of aqueous FeCl3, with synthesis durations of 3 h (sample S1) and 6 h (sample S2). XRD analyses confirmed the formation of phase-pure hematite, while TEM imaging revealed a distinctive cracked-spherical morphology with an average diameter of ≈ 35 nm and surface cracks 1–2 nm wide. The critical size for superparamagnetism and the suppression of the Morin transition below 150 K in hematite (α-Fe2O3) remain insufficiently studied. Magnetic properties revealed a size- and surface-dependent magnetic behavior. Sample S1 exhibited quasi-superparamagnetic behavior, characterized by a high blocking temperature (TB ≈ 275 K) and an irreversibility temperature exceeding room temperature (Tirr > 300 K). In contrast, sample S2 displayed a strongly suppressed Morin transition at TM ≈ 130 K. These results show that hematite nanoparticles ≈ 35 nm in size approach the superparamagnetic threshold. We attribute the modified magnetic response to enhanced surface disorder and strain associated with the cracked morphology, supported by XRD strain analysis (Williamson–Hall), HRTEM evidence of structural disorder and comparative discussion with non-cracked hematite. In addition to their tunable magnetic properties, the hematite nanoparticles demonstrated a promising potential for biomedical applications, exhibiting transverse and longitudinal MRI relaxivities (r2 ≈ 4.58 mM−1s−1 and r1 ≈ 0.075 mM−1s−1, respectively) and low cytotoxicity. This work highlights the importance of surface morphology and particle size in controlling the magnetic behavior of hematite nanostructures and their potential use as MRI contrast agents.
T2  - Journal of Alloys and Compounds
T1  - Structure-property coupling in cracked iron oxide nanoparticles: Synthesis conditions, magnetic properties, MRI relaxivity and biocompatibility
VL  - 1053
SP  - 186216
DO  - 10.1016/j.jallcom.2026.186216
ER  - 
@article{
author = "Đošić, Marko and Panjan, Matjaž and Čekada, Miha and Lazović, Jelena and Tadić, Marin",
year = "2026",
abstract = "This study reports a simple and environmentally friendly synthesis of hematite nanoparticles with tunable magnetic properties, including quasi-superparamagnetic behavior and a suppressed Morin transition. The hematite nanoparticles were synthesized via high-temperature hydrolysis of aqueous FeCl3, with synthesis durations of 3 h (sample S1) and 6 h (sample S2). XRD analyses confirmed the formation of phase-pure hematite, while TEM imaging revealed a distinctive cracked-spherical morphology with an average diameter of ≈ 35 nm and surface cracks 1–2 nm wide. The critical size for superparamagnetism and the suppression of the Morin transition below 150 K in hematite (α-Fe2O3) remain insufficiently studied. Magnetic properties revealed a size- and surface-dependent magnetic behavior. Sample S1 exhibited quasi-superparamagnetic behavior, characterized by a high blocking temperature (TB ≈ 275 K) and an irreversibility temperature exceeding room temperature (Tirr > 300 K). In contrast, sample S2 displayed a strongly suppressed Morin transition at TM ≈ 130 K. These results show that hematite nanoparticles ≈ 35 nm in size approach the superparamagnetic threshold. We attribute the modified magnetic response to enhanced surface disorder and strain associated with the cracked morphology, supported by XRD strain analysis (Williamson–Hall), HRTEM evidence of structural disorder and comparative discussion with non-cracked hematite. In addition to their tunable magnetic properties, the hematite nanoparticles demonstrated a promising potential for biomedical applications, exhibiting transverse and longitudinal MRI relaxivities (r2 ≈ 4.58 mM−1s−1 and r1 ≈ 0.075 mM−1s−1, respectively) and low cytotoxicity. This work highlights the importance of surface morphology and particle size in controlling the magnetic behavior of hematite nanostructures and their potential use as MRI contrast agents.",
journal = "Journal of Alloys and Compounds",
title = "Structure-property coupling in cracked iron oxide nanoparticles: Synthesis conditions, magnetic properties, MRI relaxivity and biocompatibility",
volume = "1053",
pages = "186216",
doi = "10.1016/j.jallcom.2026.186216"
}
Đošić, M., Panjan, M., Čekada, M., Lazović, J.,& Tadić, M.. (2026). Structure-property coupling in cracked iron oxide nanoparticles: Synthesis conditions, magnetic properties, MRI relaxivity and biocompatibility. in Journal of Alloys and Compounds, 1053, 186216.
https://doi.org/10.1016/j.jallcom.2026.186216
Đošić M, Panjan M, Čekada M, Lazović J, Tadić M. Structure-property coupling in cracked iron oxide nanoparticles: Synthesis conditions, magnetic properties, MRI relaxivity and biocompatibility. in Journal of Alloys and Compounds. 2026;1053:186216.
doi:10.1016/j.jallcom.2026.186216 .
Đošić, Marko, Panjan, Matjaž, Čekada, Miha, Lazović, Jelena, Tadić, Marin, "Structure-property coupling in cracked iron oxide nanoparticles: Synthesis conditions, magnetic properties, MRI relaxivity and biocompatibility" in Journal of Alloys and Compounds, 1053 (2026):186216,
https://doi.org/10.1016/j.jallcom.2026.186216 . .

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