in-house software matlab v7.1 (MathWorks Inc)
90
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MathWorks Inc
in-house software matlab v7.1
In House Software Matlab V7.1, supplied by MathWorks Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/in-house+software+matlab+v7%2E1/pm27297640-284-22-21
Average 90 stars, based on 1 article reviews
In House Software Matlab V7.1, supplied by MathWorks Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/in-house+software+matlab+v7%2E1/pm27297640-284-22-21
Average 90 stars, based on 1 article reviews
in-house software matlab v7.1 - by Bioz Stars,
2026-09
90/100 stars
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Software:Article Title: Synthesis of PEOlated Fe3O4@SiO2Nanoparticles via Bioinspired Silification for Magnetic Resonance Imaging Article Snippet: Inspired by the biosilification process, a highly benign synthesis strategy is successfully developed to synthesize PEOlated Fe3O4@SiO2 nanoparticles (PEOFSN) at room temperature and near-neutral pH.. The success of such a strategy lies in the simultaneous encapsulation of Fe3O4 nanocrystals and silica precursors into the core of PEO-based polymeric micelles.. The encapsulation results in the formation of a silica shell being confined to the interface between the core and corona of the Fe3O4-nanocrystal-loaded polymeric micelles. Article Title: Magnetite-loaded fluorine-containing polymeric micelles for magnetic resonance imaging and drug delivery. Article Snippet: Magnetite (Fe3O4) e loaded polymer micelles (denoted as “magnetomicelles”) are produced by selfassembly of fluorine-containing amphiphilic poly(HFMA-g-PEGMA) copolymers with oleic acid modified Fe3O4 nanoparticles in an aqueous medium.. The oleic acid modified Fe3O4 nanoparticles form small clusters in the poly(HFMA-g-PEGMA) micelles with a mean diameter of 100 nm and the magnetomicelles show high stability in an aqueous medium due to the high hydrophobic fluorine segments in graft copolymers enhance the stability of the micelles.. The magnetomicelles also show good cytocompatibility based on the MTT cytotoxicity assay and possess paramagnetic properties with saturation magnetization of 17.14 emu/g.Their good stability, cytocompatibility, and paramagnetic properties render the materials attractive in drug delivery and in vivo magnetic resonance imaging (MRI) applications. Article Title: Controlled loading of superparamagnetic nanoparticles in fluorescent nanogels as effective T2-weighted MRI contrast agents Article Snippet: Spherical superparamagnetic iron oxide nanoclusters (IONCs) with well-controlled shape and size were fabricated.. The formation of IONCs was induced by a solvent template-assisted organization of nanoparticles in a polymeric nanogel.. An amphiphilic brush copolymer was chosen as the nanogel material because it had a high density of alkyl side-chains that interdigitate through hydrophobic interactions in water to form a stable nanogel matrix. Article Title: Synthesis of Ferromagnetic Fe0.6 Mn0.4 O Nanoflowers as a New Class of Magnetic Theranostic Platform for In Vivo T1 -T2 Dual-Mode Magnetic Resonance Imaging and Magnetic Hyperthermia Therapy. Article Snippet: DOI: 10.1002/adhm.201600357 Uniform wüstite Fe0.6Mn0.4O nanoflowers have been successfully developed as an innovative theranostic agent with T1-T2 dual-mode magnetic resonance imaging (MRI), for diagnostic applications and therapeutic interventions via magnetic hyperthermia.. Unlike their antiferromagnetic bulk counterpart, the obtained Fe0.6Mn0.4O nanoflowers show unique room-temperature ferromagnetic behavior, probably due to the presence of an exchange coupling effect.. Combined with the flower-like morphology, ferromagnetic Fe0.6Mn0.4O nanoflowers are demonstrated to possess dualmodal MRI sensitivity, with longitudinal relaxivity r1 and transverse relaxivity r2 as high as 4.9 and 61.2 mm−1s−1 [Fe]+[Mn], respectively. Article Title: Synthesis of manganese ferrite/graphene oxide nanocomposites for biomedical applications. Article Snippet: In this study, MnFe 2 O 4 nanoparticle (MFNP)-decorated graphene oxide nanocomposites (MGONCs) are prepared through a simple mini-emulsion and solvent evaporation process.. It is demonstrated that the loading of magnetic nanocrystals can be tuned by varying the ratio of graphene oxide/magnetic nanoparticles.. On top of that, the hydrodynamic size range of the obtained nanocomposites can be optimized by varying the sonication time during the emulsion process. Article Title: Superparamagnetic Hyperbranched Polyglycerol-Grafted Fe3O4Nanoparticles as a Novel Magnetic Resonance Imaging Contrast Agent: An In Vitro Assessment Article Snippet: Hyperbranched polyglycerol-grafted, magnetic Fe3O4 nanoparticles (HPGgrafted MNPs) are successfully synthesized by surface-initiated ring-opening multibranching polymerization of glycidol.. Reactive hydroxyl groups are immobilized on the surface of 6–9 nm Fe3O4 nanoparticles via effective ligand exchange of oleic acid with 6-hydroxy caproic acid.. The surface hydroxyl groups are treated with aluminum isopropoxide to form the nanosized macroinitiators. Suspension:Article Title: Magnetite-loaded fluorine-containing polymeric micelles for magnetic resonance imaging and drug delivery. Article Snippet: Magnetite (Fe3O4) e loaded polymer micelles (denoted as “magnetomicelles”) are produced by selfassembly of fluorine-containing amphiphilic poly(HFMA-g-PEGMA) copolymers with oleic acid modified Fe3O4 nanoparticles in an aqueous medium.. The oleic acid modified Fe3O4 nanoparticles form small clusters in the poly(HFMA-g-PEGMA) micelles with a mean diameter of 100 nm and the magnetomicelles show high stability in an aqueous medium due to the high hydrophobic fluorine segments in graft copolymers enhance the stability of the micelles.. The magnetomicelles also show good cytocompatibility based on the MTT cytotoxicity assay and possess paramagnetic properties with saturation magnetization of 17.14 emu/g.Their good stability, cytocompatibility, and paramagnetic properties render the materials attractive in drug delivery and in vivo magnetic resonance imaging (MRI) applications. |