Corrected equations for susceptibility-induced T2-shortening.
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Cell tracking technologies for acute ischemic brain injuryNew simulation approach using classical formalism to water nuclear magnetic relaxation dispersions in presence of superparamagnetic particles used as MRI contrast agents.Dy-DTPA derivatives as relaxation agents for very high field MRI: the beneficial effect of slow water exchange on the transverse relaxivities.Nano-thermometers with thermo-sensitive polymer grafted USPIOs behaving as positive contrast agents in low-field MRI.Local spin dynamics of iron oxide magnetic nanoparticles dispersed in different solvents with variable size and shape: A 1H NMR study.Relaxation induced by ferritin and ferritin-like magnetic particles: the role of proton exchange.Characterization of Free and Porous Silicon-Encapsulated Superparamagnetic Iron Oxide Nanoparticles as Platforms for the Development of Theranostic Vaccines.Simulating Magnetic Nanoparticle Behavior in Low-field MRI under Transverse Rotating Fields and Imposed Fluid Flow.Cardiovascular magnetic resonance T2* for tissue iron assessment in the heart.A universal scaling law to predict the efficiency of magnetic nanoparticles as MRI T(2)-contrast agents.MRI evaluation of tissue iron burden in patients with beta-thalassaemia major.Scaling Laws at the Nano Size: The Effect of Particle Size and Shape on the Magnetism and Relaxivity of Iron Oxide Nanoparticle Contrast Agents.Magnetic nanoparticles: surface effects and properties related to biomedicine applicationsIn vivo quantification of magnetically labelled cells by MRI relaxometry.How cellular processing of superparamagnetic nanoparticles affects their magnetic behavior and NMR relaxivity.In vivo comparison of myocardial T1 with T2 and T2* in thalassaemia major.1H relaxation enhancement induced by nanoparticles in solutions: influence of magnetic properties and diffusion.On T2-shortening by weakly magnetized particles: the chemical exchange model.Assessment of the dentin-pulp complex response to caries by ADC mapping.On the magnetic anisotropy and nuclear relaxivity effects of Co and Ni doping in iron oxide nanoparticlesHybrid iron oxide-copolymer micelles and vesicles as contrast agents for MRI: impact of the nanostructure on the relaxometric properties
P2860
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P2860
Corrected equations for susceptibility-induced T2-shortening.
description
1999 nî lūn-bûn
@nan
1999 թուականի Ապրիլին հրատարակուած գիտական յօդուած
@hyw
1999 թվականի ապրիլին հրատարակված գիտական հոդված
@hy
1999年の論文
@ja
1999年論文
@yue
1999年論文
@zh-hant
1999年論文
@zh-hk
1999年論文
@zh-mo
1999年論文
@zh-tw
1999年论文
@wuu
name
Corrected equations for susceptibility-induced T2-shortening.
@ast
Corrected equations for susceptibility-induced T2-shortening.
@en
type
label
Corrected equations for susceptibility-induced T2-shortening.
@ast
Corrected equations for susceptibility-induced T2-shortening.
@en
prefLabel
Corrected equations for susceptibility-induced T2-shortening.
@ast
Corrected equations for susceptibility-induced T2-shortening.
@en
P2093
P356
P1476
Corrected equations for susceptibility-induced T2-shortening.
@en
P2093
P304
P356
10.1006/JMRE.1998.1691
P577
1999-04-01T00:00:00Z