[1]
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Magnetic particle imaging in vascular imaging, immunotherapy, cell tracking, and noninvasive diagnosis
|
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Molecular …,
2023 |
|
|
[2]
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Dynamic image reconstruction with motion priors in application to 3D magnetic particle imaging
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arXiv preprint arXiv:2306.11625,
2023 |
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|
[3]
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In situ theranostic platform uniting highly localized magnetic fluid hyperthermia, magnetic particle imaging, and thermometry in 3D
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arXiv preprint arXiv …,
2023 |
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[4]
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Time-dependent parameter identification in a Fokker-Planck equation based magnetization model of large ensembles of nanoparticles
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arXiv preprint arXiv:2307.03560,
2023 |
|
|
[5]
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On the Feasibility of a High-Sensitivity Imaging System for Biomedical Applications Based on Low-Frequency Magnetic Field
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IEEE Journal of …,
2023 |
|
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[6]
|
Extraction method of nanoparticles concentration distribution from magnetic particle image and its application in thermal damage of magnetic hyperthermia
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Chinese Physics B,
2023 |
|
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[7]
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Magnetic particle imaging
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Caldera - Magnetic Materials and Technologies for …,
2022 |
|
|
[8]
|
Simulating magnetization dynamics of large ensembles of single domain nanoparticles: Numerical study of Brown/Néel dynamics and parameter identification …
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Journal of Magnetism and Magnetic Materials,
2022 |
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[9]
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Simultaneous temperature and viscosity estimation capability via magnetic nanoparticle relaxation
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Medical Physics,
2022 |
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[10]
|
Tunability and Ordering in 2D Arrays of Magnetic Nanoparticles Assembled via Extreme Field Gradients
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Advanced Materials …,
2022 |
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[11]
|
Deep learning for improving the spatial resolution of magnetic particle imaging
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Physics in Medicine …,
2022 |
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[12]
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An anatomically correct 3D‐printed mouse phantom for magnetic particle imaging studies
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Bioengineering & …,
2022 |
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[13]
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Development of Magnetic Particle Imaging (MPI) Scanner for Phantom Imaging of Tracer Agents
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IEEE Transactions on …,
2022 |
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[14]
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Biomedical Applications of Nanoparticle Ferrites
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Modern Ferrites: Emerging Technologies and …,
2022 |
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[15]
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MPI-based spatio-temporal estimation of a temperature profile induced by an IR laser
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… Journal on Magnetic …,
2022 |
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[16]
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Validation of spatial selectivity enhancement for magnetic fluid hyperthermia by introducing ferromagnetic cores
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… Journal on Magnetic …,
2022 |
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[17]
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Magnetic nanoparticles and clusters for magnetic hyperthermia: Optimizing their heat performance and developing combinatorial therapies to tackle cancer
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Chemical Society …,
2021 |
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[18]
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Optical–Magnetic probe for evaluating cancer therapy
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2021 |
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[19]
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Three-dimensional image reconstruction in projection-based magnetic particle imaging
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2021 |
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[20]
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Spatial selectivity enhancement in magnetic fluid hyperthermia by magnetic flux confinement
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2021 |
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[21]
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Engineering of magnetic nanoparticles as magnetic particle imaging tracers
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2021 |
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[22]
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Magnetic systems for cancer immunotherapy
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2021 |
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[23]
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Cancer imaging and treatment monitoring with color magnetic particle imaging
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2021 |
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[24]
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Beiträge zur Magnetpartikel-Sonographie
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2021 |
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[25]
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Whither magnetic hyperthermia? A tentative roadmap
|
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2021 |
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[26]
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A novel theranostic platform: Integration of magnetomotive and thermal ultrasound imaging with magnetic hyperthermia
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2020 |
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[27]
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Tomographic field free line magnetic particle imaging with an open-sided scanner configuration
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2020 |
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[28]
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Combining magnetic particle imaging and magnetic fluid hyperthermia for localized and image-guided treatment
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2020 |
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[29]
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Improved Rectification and Osmotic Power in Polyelectrolyte-Filled Mesopores
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2020 |
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[30]
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The Applications of Magnetic Particle Imaging: From Cell to Body
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2020 |
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[31]
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A Deep Prior Approach to Magnetic Particle Imaging
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2020 |
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[32]
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Characterization of noise and background signals in a magnetic particle imaging system
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2020 |
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[33]
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Оценка токсического и противоопухолевого действия наночастиц на основе железа: выпускная бакалаврская работа по направлению подготовки: 06.03 …
|
|
2020 |
|
|
[34]
|
A Novel Cellular Imaging Method Using Hemagglutinating Virus of Japan-Envelope (HVJ-E) Vector and Magnetic Particle Imaging
|
|
2020 |
|
|
[35]
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Using magnetic particle imaging systems to localize and guide magnetic hyperthermia treatment: tracers, hardware, and future medical applications
|
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2020 |
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[36]
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Simultaneous correction of sensitivity and spatial resolution in projection‐based magnetic particle imaging
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2020 |
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[37]
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Visualization of spatial and temporal temperature distributions with magnetic particle imaging for liver tumor ablation therapy
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2020 |
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[38]
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A simulation framework for particle magnetization dynamics of large ensembles of single domain particles: Numerical treatment of Brown/N\'{e} el dynamics and …
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2020 |
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|
[39]
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Deep image prior for 3D magnetic particle imaging: A quantitative comparison of regularization techniques on Open MPI dataset
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2020 |
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[40]
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L1 data fitting for robust reconstruction in magnetic particle imaging: quantitative evaluation on Open MPI dataset
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2020 |
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[41]
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Irregularly Shaped Iron Nitride Nanoparticles as a Potential Candidate for Biomedical Applications: From Synthesis to Characterization
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2020 |
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[42]
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Assessment of pulmonary mucociliary transport using magnetic nanoparticles: influence of their surface potential
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2019 |
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[43]
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A Novel Therapeutic Strategy Combining Use of Intracellular Magnetic Nanoparticles under an Alternating Magnetic Field and Bleomycin
|
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2019 |
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[44]
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Enhanced reconstruction in magnetic particle imaging by whitening and randomized SVD approximation
|
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2019 |
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[45]
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Numerical Reconstruction in Magnetic Particle Imaging
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2019 |
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[46]
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A Review of Magnetic Particle Imaging and Perspectives on Neuroimaging
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2019 |
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|
[47]
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Generation of System Function Maps in Projection-Based Magnetic Particle Imaging Using Lock-in-Amplifier Model
|
|
2019 |
|
|
[48]
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Magnetic particle spectroscopy-based bioassays: methods, applications, advances, and future opportunities
|
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2019 |
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|
[49]
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Solving inverse problems using data-driven models
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2019 |
|
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[50]
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Design and Control of Field-Free Region Using Two Permanent Magnets for Selective Magnetic Hyperthermia
|
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2019 |
|
|
[51]
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Long-term stable measurement phantoms for magnetic particle imaging
|
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Journal of Magnetism and Magnetic Materials,
2019 |
|
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[52]
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Assessment of pulmonary mucociliary transport using magnetic nanoparticles: influence of their surface potential.
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Nanomedicine Journal,
2019 |
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[53]
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Reports about 8 selected benchmark cases of model hierarchies
|
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2018 |
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[54]
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Regularization by architecture: A deep prior approach for inverse problems
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2018 |
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[55]
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Magnetization Dynamics and Energy Dissipation of Interacting Magnetic Nanoparticles in Alternating Magnetic Fields with and without a Static Bias Field
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The Journal of Physical Chemistry C,
2018 |
|
|
[56]
|
Viscosity quantification using multi-contrast magnetic particle imaging
|
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New Journal of Physics,
2018 |
|
|
[57]
|
13 Magnetic Nanoparticle-Based Biosensing
|
|
2018 |
|
|
[58]
|
Good Manufacturing Practices (GMP) of Magnetic Nanoparticles
|
|
2018 |
|
|
[59]
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Magnetic Particle Imaging-Guided Heating in Vivo Using Gradient Fields for Arbitrary Localization of Magnetic Hyperthermia Therapy
|
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ACS Nano,
2018 |
|
|
[60]
|
In vivo tracking and quantification of inhaled aerosol using magnetic particle imaging towards inhaled therapeutic monitoring
|
|
2018 |
|
|
[61]
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Mathematical models for magnetic particle imaging
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Inverse Problems,
2018 |
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[62]
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On the degree of ill-posedness of multi-dimensional magnetic particle imaging
|
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Inverse Problems,
2018 |
|
|
[63]
|
A perspective on a rapid and radiation-free tracer imaging modality, Magnetic Particle Imaging, with promise for clinical translation
|
|
2018 |
|
|
[64]
|
Benchtop magnetic particle relaxometer for detection, characterization and analysis of magnetic nanoparticles
|
|
Physics in Medicine & Biology,
2018 |
|
|
[65]
|
Clinical Applications of Magnetic Nanoparticles: Design to Diagnosis/Manufacturing to Medicine
|
|
2018 |
|
|
[66]
|
Review Article A perspective on a rapid and radiation-free tracer imaging modality, magnetic particle imaging, with promise for clinical translation
|
|
2018 |
|
|
[67]
|
Magnetic Nanoparticle-Based Biosensing
|
|
2018 |
|
|
[68]
|
Behavior of Signal Harmonics in Magnetic Particle Imaging Based on a Lock-in-Amplifier Model
|
|
2018 |
|
|
[69]
|
Investigation of Structural Effects on the AC Magnetic Properties of Iron Oxide Nanoparticles
|
|
2018 |
|
|
[70]
|
Specific Loss Power in Magnetic Hyperthermia: Comparison of Monodispersion and Polydispersion
|
|
SSRG International Journal of Applied Physics,
2017 |
|
|
[71]
|
Magnetic Particle Imaging for Quantitative Evaluation of Tumor Response to Magnetic Hyperthermia Treatment Combined with Chemotherapy Using …
|
|
2017 |
|
|
[72]
|
Exploiting Magnetic Relaxation in x-Space Magnetic Particle Imaging
|
|
2017 |
|
|
[73]
|
Magnetic Particle Imaging for Quantitative Evaluation of Tumor Response to Magnetic Hyperthermia Treatment Combined with Chemotherapy Using Cisplatin
|
|
Thermal Med,
2017 |
|
|
[74]
|
Non-invasive methods for spatial and quantitative reconstructions of magnetic nanoparticles using electron paramagnetic resonance and magnetorelaxometry
|
|
2017 |
|
|
[75]
|
Comparative Study of Extracellular and Intracellular Magnetic Hyperthermia Treatments Using Magnetic Particle Imaging
|
|
2017 |
|
|
[76]
|
Magnetic particle imaging for aerosol-based magnetic targeting
|
|
Japanese Journal of Applied Physics,
2017 |
|
|
[77]
|
磁気粒子イメージング法の開発とナノ医学への応用
|
|
医用画像情報学会雑誌,
2017 |
|
|
[78]
|
磁気粒子イメージングを用いた磁気温熱療法と化学療法との併用に対する腫瘍反応性の定量的評価
|
|
Thermal Medicine,
2017 |
|
|
[79]
|
Safety limits & rapid scanning methods in magnetic particle imaging
|
|
2017 |
|
|
[80]
|
Combining magnetic particle imaging and magnetic fluid hyperthermia in a theranostic platform
|
|
Physics in Medicine & Biology,
2017 |
|
|
[81]
|
Effect of Signal Filtering on Image Quality of Projection-Based Magnetic Particle Imaging
|
|
2017 |
|
|
[82]
|
Effects of duty cycle on magnetostimulation thresholds in mpi
|
|
2017 |
|
|
[83]
|
A theranostic platform for localized magnetic fluid hyperthermia and magnetic particle imaging
|
|
2017 |
|
|
[84]
|
Relaxation-based viscosity mapping for magnetic particle imaging
|
|
2017 |
|
|
[85]
|
The relaxation wall: experimental limits to improving MPI spatial resolution by increasing nanoparticle core size
|
|
Biomedical Physics & Engineering Express,
2017 |
|
|
[86]
|
Magnetic particle imaging: from proof of principle to preclinical applications
|
|
Physics in Medicine & Biology,
2017 |
|
|
[87]
|
Quantitative evaluation of tumor early response to magnetic hyperthermia combined with vascular disrupting therapy using magnetic particle imaging
|
|
2016 |
|
|
[88]
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Development of magnetic nanocarriers based on thermosensitive liposomes and their visualization using magnetic particle imaging
|
|
2016 |
|
|
[89]
|
Magnetic Particle Imaging for Magnetic Hyperthermia Treatment: Visualization and Quantification of the Intratumoral Distribution and Temporal Change of Magnetic Nanoparticles in Vivo
|
|
Open Journal of Medical Imaging,
2016 |
|
|
[90]
|
Theoretical predictions for spatially-focused heating of magnetic nanoparticles guided by magnetic particle imaging field gradients
|
|
Journal of Magnetism and Magnetic Materials,
2016 |
|
|
[91]
|
Heat Transfer Simulation for Optimization and Treatment Planning of Magnetic Hyperthermia Using Magnetic Particle Imaging
|
|
2016 |
|
|
[92]
|
High-performance iron oxide nanoparticles for magnetic particle imaging–guided hyperthermia (hMPI)
|
|
Nanoscale,
2016 |
|
|
[93]
|
Determining iron oxide nanoparticle heating efficiency and elucidating local nanoparticle temperature for application in agarose gel-based tumor model
|
|
Materials Science and Engineering: C,
2016 |
|
|
[94]
|
Usefulness of Magnetic Particle Imaging for Monitoring the Effect of Magnetic Targeting
|
|
2016 |
|
|
[95]
|
Simultaneous magnetic particle imaging (MPI) and temperature mapping using multi-color MPI
|
|
2016 |
|
|
[96]
|
A High-Throughput, Arbitrary-Waveform, MPI Spectrometer and Relaxometer for Comprehensive Magnetic Particle Optimization and Characterization
|
|
Scientific reports,
2016 |
|
|
[97]
|
Methods for Estimating Specific Loss Power in Magnetic Hyperthermia Revisited
|
|
2016 |
|
|
[98]
|
A Simulation Study on the Specific Loss Power in Magnetic Hyperthermia in the Presence of a Static Magnetic Field
|
|
2016 |
|
|
[99]
|
Structural effects on the magnetic hyperthermia properties of iron oxide nanoparticles
|
|
Progress in Natural Science: Materials International,
2016 |
|
|
[100]
|
Magnetic particle imaging for magnetic hyperthermia treatment: Visualization and quantification of the intratumoral distribution and temporal change of …
|
|
2016 |
|
|
[101]
|
Magnetic particle imaging for magnetic hyperthermia treatment: Visualization and quantification of the intratumoral distribution and temporal change of magnetic …
|
|
2016 |
|
|
[102]
|
Beiträge zur Magnetpartikel-Sonographie: technische Grundlagen der Kombination medizinischer Ultraschall-und Magnetpartikel-Verfahren
|
|
Dissertation, Bochum
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