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261114 Aldrich

Gadolinium

ingot, 99.9% trace rare earth metals basis

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Properties

Related Categories 64: Gd, Catalysis and Inorganic Chemistry, Chemical Synthesis, Gadolinium, Magnetic Materials,
assay   99.9% trace rare earth metals basis
form   ingot
resistivity   126 μΩ-cm, 20°C
bp   3273 °C(lit.)
mp   1313 °C(lit.)
density   7.886 g/mL at 25 °C(lit.)

Description

Packaging

10 g in poly bottle

Price and Availability

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foil, thickness 1 mm, 99.9% trace rare earth metals basis

Gadolinium

ingot, 99.99% trace rare earth metals basis

Safety & Documentation

Safety Information

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GHS02  GHS02
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Hazard statements 
Precautionary statements 
RIDADR 
UN 3208 4.3 / PGIII
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3

Protocols & Articles

Articles

Advanced Materials for Magnetic Cooling

Today, near-room-temperature refrigeration is almost entirely based on a vapor-compression refrigeration cycle. Over the years, all parts of a commercial refrigerator, such as the compressor, heat ex...
Prof. V. K. Pecharsky , Prof. K. A. Gschneidner
Material Matters 2007, 2.4, 4.
Keywords: Applications, Indirect Immunofluorescense, transformation

Kinetic Energy Harvesting by Magnetostrictive Materials

Daniele Davino Department of Engineering University of Sannio, 82100 Benevento, Italy Email: davino@unisannio.it
Keywords: Electronics, Environmental

Metal Hydrides for NiMH Battery Applications

Rechargeable solid-state batteries are becoming increasingly important due to wide-spread use in computers, portable electronics, and vehicular applications. The Partnership for a New Generation of V...
Dhanesh Chandra,* Wen-Ming Chien and Anjali Talekar
Material Matters Volume 6 Article 2
Keywords: Absorption, Applications, Automotive, Capillary electrophoresis, Combustion, Degradations, Electrochemical analysis, Electronics, Environmental, Help, Ion-exchange chromatography, Phase transitions, Precipitation, Purification, Separation, Substitutions, Type

Working with Reactive, Volatile, Complex Materials to Produce Novel Alloys

Deborah L. Schlagel*, Andrew J. Sherve (not pictured), Thomas A. Lograsso Division of Materials Science and Engineering The Ames Laboratory, Ames, IA 50011 *Email: schlagel@iastate.edu
Keywords: Adsorption, Calorimetry, Materials Science, Melting, Microscopy, Nucleic acid annealing, Precipitation, Rearrangements, Scanning electron microscopy, Spectroscopy, transformation

Peer-Reviewed Papers

References

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Nephrogenic systemic fibrosis and gadolinium-based contrast media: updated ESUR Contrast Medium Safety Committee guidelines. Thomsen HS, Morcos SK, Almén T, et al. Eur. Radiol. 23(2), 307-18, (2013)

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The incidence, pattern, and prognostic value of left ventricular myocardial scar by late gadolinium enhancement in patients with atrial fibrillation . Neilan TG, Shah RV, Abbasi SA, et al. J. Am. Coll. Cardiol. 62(23), 2205-14, (2013)

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Magnetic resonance frequency shifts during acute MS lesion formation. Wiggermann V, Hernández Torres E, Vavasour IM, et al. Neurology 81(3), 211-8, (2013)

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Application of extracellular gadolinium-based MRI contrast agents and the risk of nephrogenic systemic fibrosis. Heverhagen JT, Krombach GA, and Gizewski E Rofo. 186(7), 661-9, (2014)

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Cardio-chemical exchange saturation transfer magnetic resonance imaging reveals molecular signatures of endogenous fibrosis and exogenous contrast media. Vandsburger M, Vandoorne K, Oren R, et al. Circ. Cardiovasc. Imaging 8(1), doi:10.1161/CIRCIMAGING.114.002180, (2015)

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Improved tumor-targeting MRI contrast agents: Gd(DOTA) conjugates of a cycloalkane-based RGD peptide. Park JA, Lee YJ, Ko IO, et al. Biochem. Biophys. Res. Commun. 455(3-4), 246-50, (2014)

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MRI findings of radiation-induced myocardial damage in patients with oesophageal cancer. Umezawa R, Ota H, Takanami K, et al. Clin. Radiol. 69(12), 1273-9, (2014)

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Emerging concepts for myocardial late gadolinium enhancement MRI. Doltra A, Amundsen BH, Gebker R, et al. Curr. Cardiol. Rev. 9(3), 185-90, (2013)

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Staging of hip osteoarthritis for clinical trials on femoroacetabular impingement. Sankar WN, Arden N, Kim YJ, et al. J. Am. Acad. Orthop. Surg. 21 Suppl 1, S33-8, (2013)

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Evaluation of an albumin-binding gadolinium contrast agent in multiple sclerosis. Kremer S, Lamy J, Magnus A, et al. Neurology 81(3), 206-10, (2013)

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[Amyloid beta-related angiitis: brain lesions showing leptomeningeal gadolinium enhancement on MRI and characteristic surgical pathologic features]. Koike Y, Ouchi H, Sato T, et al. Brain Nerve 65(6), 693-7, (2013)

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[Optimization of high flip angle for late gadolinium enhancement magnetic resonance imaging by phase-sensitive inversion recovery sequence]. Yoshizawa S, Tsuchihashi T, Harashina S, et al. Nihon Hoshasen Gijutsu Gakkai Zasshi 69(4), 380-5, (2013)

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Cerebrospinal fluid congestion in the perioptic space. Takeuchi S, Nawashiro H, Wada K, et al. Acta Neurochir. Suppl. 118, 215-8, (2013)

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Decrease in the apparent diffusion coefficient in peritumoral edema for the assessment of recurrent glioblastoma treated by bevacizumab. Takano S, Kimu H, Tsuda K, et al. Acta Neurochir. Suppl. 118, 185-9, (2013)

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Prognostic value of late gadolinium enhancement in clinical outcomes for hypertrophic cardiomyopathy. Green JJ, Berger JS, Kramer CM, et al. JACC. Cardiovasc. Imaging 5(4), 370-7, (2012)

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Spinal intradural cystic venous angioma originating from a nerve root in the cauda equina. Nishimura Y, Hara M, Natsume A, et al. J. Neurosurg. Spine 19(6), 716-20, (2013)

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Dual-modality gene reporter for in vivo imaging. Patrick PS, Hammersley J, Loizou L, et al. Proc. Natl. Acad. Sci. U. S. A. 111(1), 415-20, (2014)

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Gadolinium loaded nanoparticles in theranostic magnetic resonance imaging. Liu Y and Zhang N Biomaterials 33(21), 5363-75, (2012)

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Histological validation of iron-oxide and gadolinium based MRI contrast agents in experimental atherosclerosis: the do's and don't's. den Adel B, Bovens SM, te Boekhorst B, et al. Atherosclerosis 225(2), 274-80, (2012)

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A missing link in the transformation from asymmetric to symmetric metallofullerene cages implies a top-down fullerene formation mechanism. Zhang J, Bowles FL, Bearden DW, et al. Nature Chemistry 5(10), 880-5, (2013)

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De novo protein crystal structure determination from X-ray free-electron laser data. Barends TR, Foucar L, Botha S, et al. Nature 505(7482), 244-7, (2014)

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Neuronavigation using susceptibility-weighted venography: application to deep brain stimulation and comparison with gadolinium contrast. Bériault S, Sadikot AF, Alsubaie F, et al. J. Neurosurg. 121(1), 131-41, (2014)

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Quantitative susceptibility mapping of multiple sclerosis lesions at various ages. Chen W, Gauthier SA, Gupta A, et al. Radiology 271(1), 183-92, (2014)

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Gadolinium-based contrast agents for magnetic resonance cancer imaging. Zhou Z and Lu ZR Wiley Interdiscip. Rev. Nanomed. Nanobiotechnol. 5(1), 1-18, (2013)

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Vasoactive effects of stable aqueous suspensions of single walled carbon nanotubes in hamsters and mice. Frame MD, Dewar AM, Mullick Chowdhury S, et al. Nanotoxicology 8(8), 867-75, (2014)

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Magnetic resonance venography and liver transplant complications. Strovski E, Liu D, Scudamore C, et al. World J. Gastroenterol. 19(36), 6110-3, (2013)

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Determination of gadolinium-based MRI contrast agents in biological and environmental samples: a review. Telgmann L, Sperling M, and Karst U Anal. Chim. Acta 764, 1-16, (2013)

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Cardiac MRI assessment of atrial fibrosis in atrial fibrillation: implications for diagnosis and therapy. Higuchi K, Akkaya M, Akoum N, et al. Heart 100(7), 590-6, (2014)

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Engineered magnetic hybrid nanoparticles with enhanced relaxivity for tumor imaging. Aryal S, Key J, Stigliano C, et al. Biomaterials 34(31), 7725-32, (2013)

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Gadolinium oxide nanoparticles as potential multimodal imaging and therapeutic agents. Kim TJ, Chae KS, Chang Y, et al. Curr. Top. Med. Chem 13(4), 422-33, (2013)

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The prognostic value of late gadolinium enhancement CMR in nonischemic cardiomyopathies. Karamitsos TD and Neubauer S Curr. Cardiol. Rep. 15(1), 326, (2013)

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Gold nanoparticles provide bright long-lasting vascular contrast for CT imaging. Au JT, Craig G, Longo V, et al. AJR Am. J. Roentgenol. 200(6), 1347-51, (2013)

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Hepatocytes produce TNF-α following hypoxia-reoxygenation and liver ischemia-reperfusion in a NADPH oxidase- and c-Src-dependent manner. Spencer NY, Zhou W, Li Q, et al. Am. J. Physiol. Gastrointest. Liver Physiol. 305(1), G84-94, (2013)

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Strategies for the development of gadolinium-based 'q'-activatable MRI contrast agents. Tu C and Louie AY NMR Biomed. 26(7), 781-7, (2013)

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Energy-transfer from Gd(III) to Tb(III) in (Gd,Yb,Tb)PO4 nanocrystals. Debasu ML, Ananias D, Rocha J, et al. Phys. Chem. Chem. Phys. 15(37), 15565-71, (2013)

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Gadofosveset-enhanced magnetic resonance angiography of the thoracic vasculature in the equilibrium phase: feasibility and impact of dose. Kim CY, Heye T, Bashir MR, et al. J. Comput. Assist. Tomogr. 37(5), 732-6, (2013)

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Free-breathing, motion-corrected late gadolinium enhancement is robust and extends risk stratification to vulnerable patients. Piehler KM, Wong TC, Puntil KS, et al. Circ. Cardiovasc. Imaging 6(3), 423-32, (2013)

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Gadofosveset trisodium: abdominal and peripheral vascular applications. Sabach AS, Bruno M, Kim D, et al. AJR Am. J. Roentgenol. 200(6), 1378-86, (2013)

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Gadolinium-loaded chitosan nanoparticles as magnetic resonance imaging contrast agents for the diagnosis of tumor. Zhang L, Liu Y, Yu D, et al. J. Biomed. Nanotechnol. 9(5), 863-9, (2013)

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Gadolinium-enhanced cardiovascular magnetic resonance: administered dose in relationship to United States Food and Drug Administration (FDA) guidelines. Nacif MS, Arai AE, Lima JA, et al. J. Cardiovasc. Magn. Reson. 14, 18, (2012)

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The role of imaging in the management of progressive glioblastoma : a systematic review and evidence-based clinical practice guideline. Ryken TC, Aygun N, Morris J, et al. J. Neurooncol. 118(3), 435-60, (2014)

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Possible gadolinium ions leaching and MR sensitivity over-estimation in mesoporous silica-coated upconversion nanocrystals. Zhang S, Jiang Z, Liu X, et al. Nanoscale 5(17), 8146-55, (2013)

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Gadolinium embedded iron oxide nanoclusters as T1-T2 dual-modal MRI-visible vectors for safe and efficient siRNA delivery. Wang X, Zhou Z, Wang Z, et al. Nanoscale 5(17), 8098-104, (2013)

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Nephrogenic systemic fibrosis: a systemic fibrosing disease resulting from gadolinium exposure. Bernstein EJ, Schmidt-Lauber C, and Kay J Best Pract. Res. Clin. Rheumatol. 26(4), 489-503, (2012)

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Folate grafted Prussian Blue entrapped with gadolinium(III) as a new contrast agent for tumor-targeted magnetic resonant imaging. Song XX, Liu ZJ, and Tang Q J. Nanosci. Nanotechnol. 13(8), 5233-9, (2013)

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Evaluating peripheral arterial disease with unenhanced quiescent-interval single-shot MR angiography at 3 T. Amin P, Collins JD, Koktzoglou I, et al. AJR Am. J. Roentgenol. 202(4), 886-93, (2014)

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Polymeric vesicles loaded with gadoteridol as reversible and concentration-independent magnetic resonance imaging thermometers. Sanino A, Dastrú W, Mainini F, et al. J. Biomed. Nanotechnol. 10(8), 1620-6, (2014)

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Impact of drug size on brain tumor and brain parenchyma delivery after a blood-brain barrier disruption. Blanchette M, Tremblay L, Lepage M, et al. J. Cereb. Blood Flow Metab. 34(5), 820-6, (2014)

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High-grade glioma radiation therapy target volumes and patterns of failure obtained from magnetic resonance imaging and 18F-FDOPA positron emission tomography delineations from multiple observers. Kosztyla R, Chan EK, Hsu F, et al. Int. J. Radiat. Oncol. Biol. Phys. 87(5), 1100-6, (2013)

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Type of MRI contrast, tissue gadolinium, and fibrosis. Do C, Barnes JL, Tan C, et al. Am. J. Physiol. Renal Physiol. 307(7), F844-55, (2014)

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Evaluation of pediatric thoracic disorders: comparison of unenhanced fast-imaging-sequence 1.5-T MRI and contrast-enhanced MDCT. Gorkem SB, Coskun A, Yikilmaz A, et al. AJR Am. J. Roentgenol. 200(6), 1352-7, (2013)

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Induction of a type I interferon signature in normal human monocytes by gadolinium-based contrast agents: comparison of linear and macrocyclic agents. Wermuth PJ and Jimenez SA Clin. Exp. Immunol. 175(1), 113-25, (2014)

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Poly(lactic-co-glycolic acid) encapsulated gadolinium oxide nanoparticles for MRI-based cell tracking. Bennewitz MF, Williams SS, Nkansah MK, et al. J. Nanosci. Nanotechnol. 13(6), 3778-83, (2013)

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Cardiac magnetic resonance imaging in a patient with amniotic fluid embolism associated with severe cardiopulmonary complications. Hosoya Y, Watanabe M, Terashima M, et al. Int. Heart J. 54(2), 119-22, (2013)

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Gd@C82(OH)22 nanoparticles constrain macrophages migration into tumor tissue to prevent metastasis. Song Y, Jin J, Li J, et al. J. Nanosci. Nanotechnol. 14(6), 4022-8, (2014)

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[Gd(CyPic3A)(H2O)2]-: a stable, bis(aquated) and high-relaxivity Gd(III) complex. Gale EM, Kenton N, and Caravan P Chem. Commun. (Camb.) 49(73), 8060-2, (2013)

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In vivo magnetization transfer and diffusion-weighted magnetic resonance imaging detects thrombus composition in a mouse model of deep vein thrombosis. Phinikaridou A, Andia ME, Saha P, et al. Circ. Cardiovasc. Imaging 6(3), 433-40, (2013)

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The prognostic role of late gadolinium enhancement magnetic resonance imaging in patients with cardiomyopathy. Stirrat J and White JA Can. J. Cardiol. 29(3), 329-36, (2013)

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Gd-labeled glycol chitosan as a pH-responsive magnetic resonance imaging agent for detecting acidic tumor microenvironments. Nwe K, Huang CH, and Tsourkas A J. Med. Chem. 56(20), 7862-9, (2013)

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Cardiac sarcoidosis detected by late gadolinium enhancement and prevalence of atrial arrhythmias. Cain MA, Metzl MD, Patel AR, et al. Am. J. Cardiol. 113(9), 1556-60, (2014)

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Current status of nephrogenic systemic fibrosis. Daftari Besheli L, Aran S, Shaqdan K, et al. Clin. Radiol. 69(7), 661-8, (2014)

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Specific pattern of gadolinium enhancement in spondylotic myelopathy. Flanagan EP, Krecke KN, Marsh RW, et al. Ann. Neurol. 76(1), 54-65, (2014)

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MR arthrography: impact of steroids, local anesthetics, and iodinated contrast material on gadolinium signal intensity in phantoms at 1.5 and 3.0 T. Ugas MA, Huynh BH, Fox MG, et al. Radiology 272(2), 475-83, (2014)

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Temporal in vivo assessment of fresh osteochondral allograft transplants to the distal aspect of the femur by dGEMRIC (delayed gadolinium-enhanced MRI of cartilage) and zonal T2 mapping MRI. Brown DS, Durkan MG, Foss EW, et al. J. Bone Joint Surg. Am. 96(7), 564-72, (2014)

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Gadolinium complex of DO3A-benzothiazole aniline (BTA) conjugate as a theranostic agent. Kim HK, Kang MK, Jung KH, et al. J. Med. Chem. 56(20), 8104-11, (2013)

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Incidence and prognostic significance of myocardial late gadolinium enhancement in patients with sarcoidosis without cardiac manifestation. Nagai T, Kohsaka S, Okuda S, et al. Chest 146(4), 1064-72, (2014)

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Optimization of nano-phosphor synthesis by including sensitizer doping for medical X-ray imaging. Kim JN, Shin JW, Oh KM, et al. J. Nanosci. Nanotechnol. 13(5), 3455-8, (2013)

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GdCl3 reduces hyperglycaemia through Akt/FoxO1-induced suppression of hepatic gluconeogenesis in Type 2 diabetic mice. Wang Q, Wang N, Dong M, et al. Clin. Sci. 127(2), 91-100, (2014)

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Thermal or nonthermal? That is the question for ultrafast spin switching in GdFeCo. Zhang GP and George TF J. Phys. Condens. Matter 25(36), 366002, (2013)

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Noninvasive MRI monitoring of the effect of interventions on endothelial permeability in murine atherosclerosis using an albumin-binding contrast agent. Phinikaridou A, Andia ME, Passacquale G, et al. J. Am. Heart Assoc. 2(5), e000402, (2013)

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Use of intravenous gadolinium contrast in equine magnetic resonance imaging. Saveraid TC and Judy CE Vet. Clin. North Am. Equine Pract. 28(3), 617-36, (2012)

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Contrast-enhanced radial 3D fat-suppressed T1-weighted gradient-recalled echo sequence versus conventional fat-suppressed contrast-enhanced T1-weighted studies of the head and neck. Wu X, Raz E, Block TK, et al. AJR Am. J. Roentgenol. 203(4), 883-9, (2014)

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Facile synthesis of multifunctional beta-NaGdF4:Yb3+/Er3+ nanoparticles in oleylamine. Cheng Q, Sui J, Li Y, et al. J. Nanosci. Nanotechnol. 13(1), 529-32, (2013)

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Comparative bio-effects of SiO2/Gd2O3 nanoparticles depending on their core-shell structures. Zhang M, Xia L, Gu Z, et al. J. Nanosci. Nanotechnol. 13(2), 1270-3, (2013)

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The debate between gadolinium versus erythropoietin in a renal transplant patient with nephrogenic systemic fibrosis. Hashemi P, Sina B, Rietkerk W, et al. J. Nephrol. 26(1), 48-54, (2013)

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Dealing with vascular conundrums with MR imaging. Angthong W and Semelka RC Radiol. Clin. North Am. 52(4), 861-82, (2014)

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Gadolinium contrast agent selection and optimal use for body MR imaging. Guglielmo FF, Mitchell DG, and Gupta S Radiol. Clin. North Am. 52(4), 637-56, (2014)

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Brain gadolinium enhancement along the ventricular and leptomeningeal regions in patients with aquaporin-4 antibodies in cerebral spinal fluid. Long Y, Chen M, Zhang B, et al. J. Neuroimmunol. 269(1-2), 62-7, (2014)

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Sturge-Weber syndrome with spontaneous intracerebral hemorrhage in childhood. Nakajima M, Sugano H, Iimura Y, et al. J. Neurosurg. Pediatr. 13(1), 90-3, (2014)

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Giant ecchordosis physaliphora in an adolescent girl: case report. Krisht KM, Palmer CA, Osborn AG, et al. J. Neurosurg. Pediatr. 12(4), 328-33, (2013)

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Novel method of producing nanoparticles for gadolinium-scintillator-based digital radiography. Lee YK, Park SK, Shin JW, et al. J. Nanosci. Nanotechnol. 13(10), 7026-9, (2013)

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Comparing T1-weighted and T2-weighted three-point Dixon technique with conventional T1-weighted fat-saturation and short-tau inversion recovery (STIR) techniques for the study of the lumbar spine in a short-bore MRI machine. Brandão S, Seixas D, Ayres-Basto M, et al. Clin. Radiol. 68(11), e617-23, (2013)

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Spinal cord astrocytoma mimicking multifocal myelitis. Neutel D, Teodoro T, Coelho M, et al. J. Spinal Cord Med. 37(4), 429-31, (2014)

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Indirect magnetic resonance lymphography of the head and neck of dogs using Gadofluorine M and a conventional gadolinium contrast agent: a pilot study. Mayer MN, Kraft SL, Bucy DS, et al. Can. Vet. J. 53(10), 1085-90, (2012)

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Urinary KIM-1, IL-18 and Cys-c as early predictive biomarkers in gadolinium-based contrast-induced nephropathy in the elderly patients. Duan SB, Liu GL, Yu ZQ, et al. Clin. Nephrol. 80(5), 349-54, (2013)

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Gadolinium-based magnetic resonance contrast agents for neuroradiology: an overview. Kanal E Magn. Reson. Imaging Clin. N. Am. 20(4), 625-31, (2012)

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[Combined use of contrast media containing iodine and gadolinium for imaging and intervention : A hitherto widely ignored topic in radiological practice]. Golder W Radiologe 52(2), 167-72, (2012)

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Acute adverse reactions to radiographic iodinated and gadolinium-based contrast media: incidence, risk factors and premedication: from published evidence to a practical approach. Tonolini M and Bianco R Clin. Ter. 162(6), 591-4, (2011)

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Successful treatment of multifocal intracerebral and spinal hemangiomas with propranolol. Miquel J, Bruneau B, and Dupuy A J. Am. Acad. Dermatol. 70(4), e83-4, (2014)

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Teaching neuroimages: reversible paradoxical lithium neurotoxicity. Vishnu VY, Kesav P, Goyal MK, et al. Neurology 81(14), e110, (2013)

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Left ventricular scar in atrial fibrillation: cause or effect? Ling Z and Tandri H J. Am. Coll. Cardiol. 62(23), 2215-6, (2013)

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Primary fourth ventricular solitary schwannoma: case report and review of the literature. Chen LH, Zhang HT, Xu RX, et al. Neurol. India 61(3), 330-2, (2013)

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Ischemic late gadolinium enhancement. Chou SH, Walker CM, and Chung JH J. Thorac. Imaging 28(5), W67-8, (2013)

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[Are rare earths used in offshore windpower installations toxic?]. Goullé JP, Saussereau E, Lacroix C, et al. Bull. Acad. Natl. Med. 196(7), 1457-61, (2012)

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Imaging new lesions: enhancing our understanding of multiple sclerosis pathogenesis. Fisher E and Reich DS Neurology 81(3), 202-3, (2013)

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Active cardiac sarcoidosis: first clinical experience of simultaneous positron emission tomography--magnetic resonance imaging for the diagnosis of cardiac disease. White JA, Rajchl M, Butler J, et al. Circulation 127(22), e639-41, (2013)

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Teaching neuroimages: "pancake-like" gadolinium enhancement suggests compressive myelopathy due to spondylosis. Flanagan EP, Marsh RW, and Weinshenker BG Neurology 80(21), e229, (2013)

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Decubital ischemic fasciitis. Ceulemans LJ, Jacomen G, and Vanhoenacker FM JBR-BTR 96(1), 52, (2013)

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Sacral chordoma. Behaeghe M, Denis A, Jans L, et al. JBR-BTR 96(1), 51, (2013)

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B-cell malt lymphoma of the small intestine. Koc G, Oyar O, Yazicioğlu N, et al. JBR-BTR 96(1), 40, (2013)

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A bi-center cardiovascular magnetic resonance prognosis study focusing on dobutamine wall motion and late gadolinium enhancement in 3,138 consecutive patients. Kelle S, Nagel E, Voss A, et al. J. Am. Coll. Cardiol. 61(22), 2310-2, (2013)

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Merck 14,4326

Aldrich MSDS 1, 986:A / Aldrich MSDS 1, 986:B / Corp MSDS 1 (1), 1758:B / Corp MSDS 1 (1), 1758:A / RegBook 1 (3), 3233:B / Sax 6, 1468

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