Plain
Synomag®-D und synomag®-S werden mittels Core-Shell-Verfahren hergestellt. Sie besitzen einen Maghemit-Kern mit „Nanoflower“-Struktur, welcher in einer Matrix aus Dextran oder Stärke eingebettet ist. Die unmodifizierten Oberflächen sind mit einem hydrodynamischen Durchmesser von 50 nm und 70 nm (synomag®-D) bzw. 100 nm (synomag®-S) erhältlich. Synomag®-D- und synomag®-S-Partikel können nicht mit am Permanentmagneten, sondern nur in einem Hochgradientenmagnetfeld separiert werden. Sie werden in Wasser ohne Zusatz von Detergenzien geliefert.
Synomag®-D-Partikel wurden in der Entwicklungsphase von verschiedenen Arbeitsgruppen unter den Namen MM08 (Bender et al. 2018) bzw. NF-2 (Gavilan et al. 2017) charakterisiert. Synomag®-D-Partikel sind effektive Forschungstracer für das Magnetic Particle Imaging (MPI). Die Amplitude A3 der 3. Harmonischen im MPS-Spektrum von synomag®-D ist mehr als zweimal so hoch im Vergleich zu Resovist® (Grüttner et al. 2018).
Alle 3 Ergebnisse werden angezeigt
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- J. Borchers, K. Krycka, B. Bosch‐Santos, E. de Lima Correa, A. Sharma, H. Carlton, Y. Dang, M. Donahue, C. Grüttner, R. Ivkov and C. L. Dennis, Magnetic Anisotropy Dominates over Physical and Magnetic Structure in Performance of Magnetic Nanoflowers, Small Structures, 2024, n/a(n/a), 2400410;
- O. Buchholz, K. Sajjamark, J. Franke, H. Wei, A. Behrends, C. Münkel, C. Grüttner, P. Levan, D. von Elverfeldt and M. Graeser, In situ theranostic platform combining highly localized magnetic fluid hyperthermia, magnetic particle imaging, and thermometry in 3D, Theranostics, 2024, 14(1), 324;
- T. Q. Bui, W. L. Tew and S. I. Woods, AC magnetometry with active stabilization and harmonic suppression for magnetic, Biomedizinische Technik. Biomedical engineering, 2013, 58(6), 535–545;
- H. Carlton and R. Ivkov, A new method to measure magnetic nanoparticle heating efficiency in non-adiabatic systems using transient pulse analysis, Journal of Applied Physics, 2023, 133(4), 044302;
- H. Carlton, M. Salimi, N. Arepally, G. Bentolila, A. Sharma, A. Bibic, M. Newgren, P. Goodwill, A. Attaluri and P. Korangath, Ranking magnetic colloid performance for magnetic particle imaging and magnetic particle hyperthermia, Advanced Functional Materials, 2025, 35(2), 2412321;
- S.-M. Choi, J.-C. Jeong, J. Kim, E.-G. Lim, C.-b. Kim, S.-J. Park, D.-Y. Song, H.-J. Krause, H. Hong and I. S. Kweon, A novel three-dimensional magnetic particle imaging system based on the frequency mixing for the point-of-care diagnostics, Scientific Reports, 2020, 10(1), 1–16;
- K. Enpuku, S. Yamamura and T. Yoshida, Quantitative explanation of the difference in AC magnetization curves between suspended and immobilized magnetic nanoparticles for biomedical application, Journal of Magnetism and Magnetic Materials, 2022, 564(170089;
- S. N. Flood and P. J. Foster, Advances in magnetic particle imaging: evaluating magnetic microspheres and optimized acquisition parameters for high sensitivity cell tracking, Frontiers in Imaging, 2025, 4(1610258;
- H. Gavilán, A. Kowalski, D. Heinke, A. Sugunan, J. Sommertune, M. Varón, L. K. Bogart, O. Posth, L. Zeng, D. González‐Alonso, C. Balceris, J. Fock, E. Wetterskog, C. Frandsen, N. Gehrke, C. Grüttner, A. Fornara, F. Ludwig, S. Veintemillas- Verdaguer, C. Johansson and M. Puerto Morales, Colloidal Flower‐Shaped Iron Oxide Nanoparticles: Synthesis Strategies and Coatings, Particle & Particle Systems Characterization, 2017, 1700094;
- E. M. Greeson, C. S. Madsen, A. V. Makela and C. H. Contag, Magnetothermal control of temperature-sensitive repressors in superparamagnetic iron nanoparticle-coated Bacillus subtilis, ACS nano, 2022, 16(10), 16699–16712;
- F. Griese, T. Knopp, C. Grüttner, F. Thieben, K. Müller, S. Loges, P. Ludewig and N. Gdaniec, Simultaneous Magnetic Particle Imaging and Navigation of large superparamagnetic nanoparticles in bifurcation flow experiments, Journal of Magnetism and Magnetic Materials, 2020, 498(166206;
- A. Güngör, B. Askin, D. A. Soydan, E. U. Saritas, C. B. Top and T. Çukur, TranSMS: Transformers for super-resolution calibration in magnetic particle imaging, IEEE Transactions on Medical Imaging, 2022, 41(12), 3562–3574;
- S. Harvell-Smith and N. T. K. Thanh, Magnetic particle imaging: tracer development and the biomedical applications of a radiation-free, sensitive, and quantitative imaging modality, Nanoscale, 2022, 14(10), 3647–3974;
- E. D. Imhoff, A. Melnyk and C. M. Rinaldi-Ramos, Characterization and evaluation of commercial tracers for x-space magnetic particle imaging, Journal of magnetism and magnetic materials, 2025, 620(172889;
- E. D. Imhoff, A. Melnyk and C. M. Rinaldi-Ramos, Characterization and evaluation of commercial tracers for x-space magnetic particle imaging, Journal of Magnetism and Magnetic Materials, 2025, 620(172889;
- M. Irfan, N. Dogan, T. Sapmaz and A. Bingolbali, Development of MPI Relaxometer for characterization of Superparamagnetic nanoparticles, Journal of Magnetism and Magnetic Materials, 2021, 168082;
- G. Jia, L. Huang, Z. Wang, X. Liang, Y. Zhang, Y. Zhang, Q. Miao, K. Hu, T. Li and Y. Wang, Gradient-Based Pulsed Excitation and Relaxation Encoding in Magnetic Particle Imaging, IEEE Transactions on Medical Imaging, 2022, 41(12), 3725–3733;
- H. Kim, J. Kim, J. Kim, S. Oh, K. Choi and J. Yoon, Magnetothermal-based non-invasive focused magnetic stimulation for functional recovery in chronic stroke treatment, Scientific Reports, 2023, 13(1), 4988;
- O. Kosch, A. Remmo, J. Wells and F. Wiekhorst, Two-voxel-analysis to assess the spatial resolution of a tracer in Lissajous-scanning magnetic particle imaging, Journal of Magnetism and Magnetic Materials, 2023, 565(170170;
- D. A. Kuckla, J.-S. Brand, B. Czech, A. Asharion, J. V. Jüttner, I. P. Novoselova, A. Neusch, P. Hagemann, M. Getzlaff and C. Monzel, An efficient magnetothermal actuation setup for fast heating/cooling cycles or long-term induction heating of different magnetic nanoparticle classes, Journal of Physics D: Applied Physics, 2023, 56(50), 505002;
- P. Ludewig, M. Graeser, N. D. Forkert, F. Thieben, J. Rández-Garbayo, J. Rieckhoff, K. Lessmann, F. Förger, P. Szwargulski, T. Magnus and T. Knopp, Magnetic particle imaging for assessment of cerebral perfusion and ischemia, Wiley interdisciplinary reviews. Nanomedicine and nanobiotechnology, 2021, e1757;
- S. Ozkan, E. U. Horno, R. Saul, M. L. Maguire, H. Poptani, M. Giardiello and P. Murray, Evaluating Labelling Efficiency of Commercial SPIONs in Mesenchymal Stem/Stromal Cells for Magnetic Particle Imaging Applications, bioRxiv, 2025, 2025.08. 02.668266;
- A. M. Pourshahidi, S. Achtsnicht, M. M. Nambipareechee, A. Offenhäusser and H.-J. Krause, Multiplex Detection of Magnetic Beads Using Offset Field Dependent Frequency Mixing Magnetic Detection, Sensors, 2021, 21(17), 5859;
- A. M. Pourshahidi, S. Achtsnicht, A. Offenhäusser and H.-J. Krause, Frequency Mixing Magnetic Detection Setup Employing Permanent Ring Magnets as a Static Offset Field Source, Sensors, 2022, 22(22), 8776;
- K. Riahi, M. T. Rietberg, J. P. y Perez, C. Dijkstra, B. ten Haken and L. Alic, Effect of Changing Iron Content and Excitation Frequency on Magnetic Particle Imaging Signal: A Comparative Study of Synomag® Nanoparticles, International Journal of Chemical and Materials Engineering, 2021, 15(5), 109–112;
- K. Riahi, M. M. van de Loosdrecht, L. Alic and B. ten Haken, Assessment of differential magnetic susceptibility in nanoparticles: Effects of changes in viscosity and immobilisation, Journal of Magnetism and Magnetic Materials, 2020, 167238;
- M. T. Rietberg, S. Waanders, M. M. Horstman-Van de Loosdrecht, R. R. Wildeboer, B. Ten Haken and L. Alic, Modelling of Dynamic Behaviour in Magnetic Nanoparticles, Nanomaterials, 2021, 11(12), 3396;
- V. G. Rivera-Llabres, Z. A. Fields, H. J. Good, A. Melnyk and C. M. Rinaldi-Ramos, Microfluidic formulation and characterization of size-tunable microparticle magnetic particle imaging tracers, Journal of magnetism and magnetic materials, 2025, 622(172987;
- A. Shakeri-Zadeh, S. Kuddannaya, C. Chu, K. Sood, A. Itoo, C. Zivko, V. Mahairaki, P. Walczak and J. Bulte, Fast dynamic whole-body in vivo cytometry using magnetic particle imaging, bioRxiv, 2025, 2025.09. 11.675624;
- P. Szwargulski, M. Wilmes, E. Javidi, F. Thieben, M. Graeser, M. Koch, C. Gruettner, G. Adam, C. Gerloff and T. Magnus, Monitoring Intracranial Cerebral Hemorrhage Using Multicontrast Real-Time Magnetic Particle Imaging, ACS nano, 2020, 14(10), 13913–13923;
- A. C. Velazquez-Albino, E. D. Imhoff and C. M. Rinaldi-Ramos, Advances in engineering nanoparticles for magnetic particle imaging (MPI), Science Advances, 2025, 11(2), eado7356;
- F. Wang, L. Yan, J. Xu, M. Qin, J. Sun, L. Xu, W. Zhuang, X. Ning, G. Jin and M. Chen, Research on hemorrhagic stroke detection enhanced by magnetic nanoparticle-based magnetic induction, Physiological Measurement, 2026, 47(1), 015003;
- Z. Wei, Y. Liu, S. Liu, X. Yu, H. Zhang, T. Zhu, B. Zhang, Y. Zhang, H. Huang and Y. Fan, First nonhuman primate-sized magnetic particle imaging system based on digital-scanned focus field, IEEE Transactions on Instrumentation and Measurement, 2024, 73(1–11;
- R. J. Williams, O. C. Sehl, J. J. Gevaert, S. Liu, J. J. Kelly, P. J. Foster and J. A. Ronald, Dual Magnetic Particle Imaging and Akaluc Bioluminescence Imaging for Tracking Cancer Cell Metastasis, Tomography, 2023, 9(1), 178–194;
| Artikelnr. | Name | Oberfläche | Durchmesser | Konzentration | Menge | Preis | TDS | MSDS | Bestellung |
|---|---|---|---|---|---|---|---|---|---|
| 104-00-501 | synomag®-D | plain | 50 nm | 20 mg/ml | 5 ml | 162,00 € |
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In den Warenkorb |
| 104-00-701 | synomag®-D | plain | 70 nm | 20 mg/ml | 5 ml | 162,00 € |
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In den Warenkorb |
| 105-00-102 | synomag®-S | plain | 100 nm | 25 mg/ml | 5 ml | 162,00 € |
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In den Warenkorb |