A low-field magnetic resonance-based 2 A Calculation Method for Relaxation Temperature of Magnetic Nanoparticles
A magnetic nanoparticle and magnetic resonance technology, applied in the field of magnetic nanoparticle temperature calculation based on low-field magnetic resonance T2 relaxation, can solve the problems of poor linearity, difficult imaging, and low temperature measurement accuracy, and achieve high-precision measurement. warm effect
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[0057] 1. Obtainment of magnetic field dependence of candidate magnetic nanoparticles and their induced magnetization temperature sensitivity.
[0058] The SHP series magnetic nanoparticle reagents SHP-05, SHP-10 and SHP-20 (Ocean NanoTech Company) with nominal core particle diameters of 5nm, 10nm and 20nm were selected, all based on Fe 3 o 4 It is a magnetic core, and the surface of the magnetic core is coated with a single layer of oleic acid and a single layer of amphiphilic polymer, so it has good water solubility and monodispersity.
[0059] Take a certain amount of the above-mentioned candidate magnetic nanoparticle reagents to fill small centrifuge tubes, seal them up, and then use the SQUID-MPMS-XL7 (Quantum Design, USA) magnetic measurement system to set the sample temperature at 290K, 300K, 305K, 310K and 320K respectively. , measure its M-H magnetization curve, where the excitation magnetic field ranges from 0 Oe to 15000 Oe. The M-H magnetization curves of magnet...
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