4.8 Article

Superferromagnetic Nanoparticles Enable Order-of-Magnitude Resolution & Sensitivity Gain in Magnetic Particle Imaging

期刊

SMALL METHODS
卷 5, 期 11, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smtd.202100796

关键词

magnetic nanoparticles; magnetic particle imaging; superferromagnetism

资金

  1. NIH [R01 EB019458, R01 EB024578, R01 EB029822, R44: EB029877, 1R21 EB018453-01A1]
  2. Bakar Fellowship
  3. UC Discovery Award
  4. NSF student fellowships
  5. University of Florida Health Cancer Center
  6. Siebel Scholars Foundation
  7. Agency of Science Technology and Research (A*STAR) Singapore BMRC Central Research Fund (CRF, UIBR) Award
  8. CDA Award [202D800036]
  9. UC TRDRP grant [26IP-0049]
  10. M. Cook Chair
  11. NIH T32 training grant

向作者/读者索取更多资源

This study explores the advantages and new discoveries of superferromagnetic iron oxide nanoparticle chains in medical imaging, demonstrating their potential to improve image resolution and signal-to-noise ratio, as well as investigating their potential applications in medical imaging.
Magnetic nanoparticles have many advantages in medicine such as their use in non-invasive imaging as a Magnetic Particle Imaging (MPI) tracer or Magnetic Resonance Imaging contrast agent, the ability to be externally shifted or actuated and externally excited to generate heat or release drugs for therapy. Existing nanoparticles have a gentle sigmoidal magnetization response that limits resolution and sensitivity. Here it is shown that superferromagnetic iron oxide nanoparticle chains (SFMIOs) achieve an ideal step-like magnetization response to improve both image resolution & SNR by more than tenfold over conventional MPI. The underlying mechanism relies on dynamic magnetization with square-like hysteresis loops in response to 20 kHz, 15 kAm(-1) MPI excitation, with nanoparticles assembling into a chain under an applied magnetic field. Experimental data shows a 1D avalanche dipole reversal of every nanoparticle in the chain when the applied field overcomes the dynamic coercive threshold of dipole-dipole fields from adjacent nanoparticles in the chain. Intense inductive signal is produced from this event resulting in a sharp signal peak. Novel MPI imaging strategies are demonstrated to harness this behavior towards order-of-magnitude medical image improvements. SFMIOs can provide a breakthrough in noninvasive imaging of cancer, pulmonary embolism, gastrointestinal bleeds, stroke, and inflammation imaging.

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