Physikalisch-Technische Bundesanstalt, Abbestrasse 2-12, D-10587 Berlin, Germany.
Institute of Electrical and Biomedical Engineering, UMIT TIROL-Private University for Health Sciences and Health Technology, Hall in Tirol, Austria.
Phys Med Biol. 2023 Aug 17;68(17). doi: 10.1088/1361-6560/acec28.
Magnetorelaxometry imaging (MRXI) is a non-invasive, quantitative imaging technique for magnetic nanoparticles (MNPs). The image resolution of this technique significantly depends on the relaxation amplitude (Δ). For this work, we measured the room temperature (299 K) relaxation signals of eight commercial MNP sample systems with different magnetic properties, in both fluid and immobilized states, in order to select the most suitable sample for a particular MRXI setting. Additionally, the effect of elevated temperatures (up to hyperthermia temperature, 335 K) on the relaxation signals of four different MNP systems (Synomag, Perimag, BNF and Nanomag) in both states were investigated. The Δvalues of fluid samples significantly decreased with increasing temperature, and the behaviour for immobilized samples depended on their blocking temperature (). For samples with< 299 K, Δalso decreased with increasing temperature. Whereas for samples with> 299 K, the opposite behaviour was observed. These results are beneficial for improving the image resolution in MRXI and show, among the investigated systems, and for our setup, Synomag is the best candidate for futureandstudies. This is due to its consistently high Δbetween 299 and 335 K in both states. Our findings demonstrate the feasibility of temperature imaging by MRXI.
磁共振弛豫成像(MRXI)是一种用于磁性纳米粒子(MNPs)的非侵入性、定量成像技术。该技术的图像分辨率显著取决于弛豫幅度(Δ)。为此,我们测量了具有不同磁性能的八个商业 MNP 样品系统在室温(299 K)下在流体和固定状态下的弛豫信号,以选择最适合特定 MRXI 设置的样品。此外,我们还研究了四种不同的 MNP 系统(Synomag、Perimag、BNF 和 Nanomag)在两种状态下的弛豫信号在升高温度(高达 335 K 的热疗温度)下的变化。流体样品的Δ值随温度升高显著降低,而固定样品的行为取决于其阻塞温度()。对于<299 K 的样品,Δ也随温度升高而降低。而对于>299 K 的样品,则观察到相反的行为。这些结果有助于提高 MRXI 中的图像分辨率,并在研究的系统中展示了,对于我们的设置,Synomag 是未来和研究的最佳候选者。这是由于其在两种状态下均在 299 和 335 K 之间具有始终如一的高Δ。我们的研究结果证明了通过 MRXI 进行温度成像的可行性。