![]() Manganese(II,III) oxide structure
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Common Name | Manganese(II,III) oxide | ||
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CAS Number | 1317-35-7 | Molecular Weight | 228.81200 | |
Density | 4.8 g/mL at 25 °C(lit.) | Boiling Point | N/A | |
Molecular Formula | Mn3O4 | Melting Point | 1705°C | |
MSDS | Chinese USA | Flash Point | N/A |
Synthesizing and staining manganese oxide nanoparticles for cytotoxicity and cellular uptake investigation.
Biochim. Biophys. Acta 1840(1) , 428-33, (2014) For decades, contrast agents have been used to reduce longitudinal (T1) or transverse (T2) relaxation times. High toxicity of gadolinium-based contrast agents leads researchers to new T1 contrast agents. Manganese oxide (MnO) nanoparticle (NP) with the lower ... |
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Water-soluble and biocompatible MnO@PVP nanoparticles for MR imaging in vitro and in vivo.
J. Biomed. Nanotechnol. 9(6) , 976-84, (2013) The uniform-sized manganese oxide nanoparticles (the oleic-capped MnO NPs) were synthesized by the thermal decomposition of Mn-oleate complex and were transferred into water with the help of cationic surfactant of cetyltrimethyl ammonium bromide (CTAB), then ... |
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Water defluoridation by aluminium oxide-manganese oxide composite material.
Environ. Technol. 35(13-16) , 1893-903, (2014) In this study, aluminium oxide-manganese oxide (AOMO) composite material was synthesized, characterized, and tested for fluoride removal in batch experiments. AOMO was prepared from manganese(II) chloride and aluminium hydroxide. The surface area of AOMO was ... |
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Functionalization of La(0.7)Sr(0.3)MnO3 nanoparticles with polymer: studies on enhanced hyperthermia and biocompatibility properties for biomedical applications.
Colloids Surf. B Biointerfaces 104 , 40-7, (2013) Now-a-days surface functionalized La(0.7)Sr(0.3)MnO(3) (LSMO) nanoparticles by different biocompatible polymers are attracted considerable interest in various biomedical applications in general and magnetic fluid hyperthermia treatment of cancer in particular... |
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Cucumber-like V2O5/poly(3,4-ethylenedioxythiophene)&MnO2 nanowires with enhanced electrochemical cyclability.
Nano Lett. 13(2) , 740-5, (2013) Inspired by the cucumber-like structure, by combining the in situ chemical oxidative polymerization with facile soaking process, we designed the heterostructured nanomaterial with PEDOT as the shell and MnO(2) nanoparticles as the protuberance and synthesized... |
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Catalytic oxidation of benzene using mesoporous alpha-Mn2O3.
J. Nanosci. Nanotechnol. 13(11) , 7472-6, (2013) The catalytic oxidation of benzene was carried out over mesoporous alpha-Mn2O3, MnOx/KIT-6, and bulk commercial Mn oxides (Mn2O3, MnO2, and MnO). The catalysts were characterized using X-ray diffraction, X-ray photoelectron spectroscopy, Brunauer-Emmett-Telle... |
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Galvanic replacement reactions in metal oxide nanocrystals.
Science 340(6135) , 964-8, (2013) Galvanic replacement reactions provide a simple and versatile route for producing hollow nanostructures with controllable pore structures and compositions. However, these reactions have previously been limited to the chemical transformation of metallic nanost... |
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Nonextractable residue formation of sulfonamide antimicrobials: new insights from soil incubation experiments.
Chemosphere 107 , 366-72, (2014) Soil incubation experiments using (14)C-labelled sulfamethazine were carried out to assess the factors governing its nonextractable residue (NER) formation via nucleophilic addition reactions. Circumstantial evidence on possible mechanisms of NER formation wa... |
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Chemistry. All change for nanocrystals.
Science 340(6135) , 935-6, (2013)
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Hydrogeochemical factors affecting the mobilization of As into the groundwater of the Brahmaputra alluvial plains of Assam, Northeast India.
Environ. Sci. Process. Impacts 15(9) , 1775-82, (2013) Groundwater in the Brahmaputra river basin is known to contain an elevated concentration of naturally occurring Arsenic (As). To better understand the mobilization processes responsible for the As enrichment in the groundwater of the alluvial plains of the Br... |