Yixiu Wang、Ming Wei、Fengjia Fan 等 7 位作者2014-11-27ChemInform
Abstract Precursor Cu2SnS3 (CTS) nanoparticles with zinc blende (ZB) and wurtzite (WZ) derived structure are prepared by dissolving CuCl2 and SnCl2 in oleylamine (180 °C, 30 min) followed by addition of different S sources (ZB‐type: elemental S, 280 °C; WZ‐type: 1‐dodecanethiol, 230 °C, 2 h).
Quantum Dots Synthesis And PropertiesChalcogenide Semiconductor Thin FilmsCopper-based nanomaterials and applications
Kyriakos Bourikas、Christos Kordulis、Alexis Lycourghiotis2014-11-27ChemInform
Abstract Review: 451 refs.
TiO2 Photocatalysis and Solar CellsAdvanced Photocatalysis TechniquesCatalytic Processes in Materials Science
L. X. Chen、X. Zhang、Megan L. Shelby2014-11-27ChemInform
Abstract Review: 141 refs.
Mass Spectrometry Techniques and ApplicationsEnzyme Structure and FunctionX-ray Spectroscopy and Fluorescence Analysis
Yi Rong、Gang Ye、Fengcheng Wu 等 6 位作者2014-11-27ChemInform
Abstract Fe3O4@SiO2@KTiFC (KTiFC: potassium titanium ferrocyanide) particles are prepared from mixtures of Fe3O4@SiO2 in H2O, hydroxypropyl cellulose, and Ti(OBu)4 in EtOH (reflux, 85°C, 150 min), followed by soaking the obtained product in a HCl solution of K4Fe(CN)6 (stirring for 5 h).
Radioactive element chemistry and processingCovalent Organic Framework ApplicationsChemical Synthesis and Characterization
Samuel E. Evans、O. J. Good、John Staniforth 等 5 位作者2014-11-27ChemInform
Abstract Ni0.2Sr0.8ZrO3 catalyst is hydrothermally prepared from a stoichiometric mixture of ZrOCl2, Sr(NO3)2, and Ni(NO3)2 (autoclave, 180 °C, 72 h).
Catalytic Processes in Materials ScienceAdvancements in Solid Oxide Fuel CellsCatalysts for Methane Reforming
Lingyun Li、Yan Yu、Guofu Wang 等 4 位作者2014-11-27ChemInform
Abstract A Cr3+‐doped Li2Mg2(WO4)3 crystal with dimension of 40 x 10 mm2 is prepared by the top‐seeded solution growth method from a mixture of Li2Mg2(WO4)3, Li2WO4, WO3, and Cr2O3 in a molar ratio of 1:15:4:0.01 (Pt crucible, 1000 °C, 48 h).
Advanced Chemical Physics StudiesLuminescence Properties of Advanced MaterialsSolid State Laser Technologies
Fan Shi、Lu Li、Xiuli Wang 等 5 位作者2014-11-27ChemInform
Abstract Review: 207 refs.
Supercapacitor Materials and FabricationAdvanced battery technologies researchAerogels and thermal insulation
Xiao‐Cun Liu、Mingyan Pan、Xin Li 等 5 位作者2014-11-27ChemInform
Abstract Single crystals of two polymorphs of the title compound are prepared using Sn as a self‐flux from mixtures of Sr, Sn, and As in the ratio of 3:10:4 and 1:7:2, respectively (1000 resp.
Rare-earth and actinide compoundsCrystal Structures and PropertiesIron-based superconductors research
Hyunjoo Lee2014-11-27ChemInform
Abstract Review: 121 refs.
Catalytic Processes in Materials ScienceCopper-based nanomaterials and applicationsNanomaterials for catalytic reactions
Emmanuel Guilmeau、David Berthebaud、Patrick R. N. Misse 等 8 位作者2014-11-27ChemInform
Abstract A dense TiS3 sample is prepared by solid state reaction of a 1:4 mixture of Ti and S (evacuated quartz ampoule, 600 °C) followed by spark plasma sintering in vacuum and subsequent hot press molding (600 °C, 50 MPa, 10 min).
2D Materials and ApplicationsAdvanced Thermoelectric Materials and DevicesChalcogenide Semiconductor Thin Films
Wei Zhu、Xiuyun Yang、Yun‐Hui Li 等 7 位作者2014-11-27ChemInform
Abstract The mixed‐valent iron compound {Na6(H2O)12 [FeII2]2 [FeIII4(PO4)] [FeII(Mo6O15)2 (PO4)8] 2}(OH)3·33H2O is hydrothermally synthesized from aqueous mixtures of FeCl2, Na2MoO4, H3PO4, and imidazole (autoclave, 180 °C, 3 d, 71% yield).
Metal-Organic Frameworks: Synthesis and ApplicationsPolyoxometalates: Synthesis and ApplicationsChemical Synthesis and Characterization
Jian Tian、Zhenhuan Zhao、Anil Kumar 等 5 位作者2014-11-27ChemInform
Abstract Review: 50 refs.
Gas Sensing Nanomaterials and SensorsCopper-based nanomaterials and applicationsElectronic and Structural Properties of Oxides
Nicola Magnani2014-11-27ChemInform
Abstract Review: 31 refs.
Magnetism in coordination complexesRare-earth and actinide compoundsAdvanced Condensed Matter Physics
Yu Zhou、Guojian Chen、Zhouyang Long 等 4 位作者2014-11-27ChemInform
Abstract Review: 220 refs.
Metal-Organic Frameworks: Synthesis and ApplicationsPolyoxometalates: Synthesis and ApplicationsChemical Synthesis and Reactions
Tehuan Chen、Chao Xu、Zhigang Ren 等 4 位作者2014-11-27arXiv (Cornell University)
When fluid flow in a pipeline is suddenly halted, a pressure surge or wave is created within the pipeline. This phenomenon, called water hammer, can cause major damage to pipelines, including pipeline ruptures. In this paper, we model the problem of mitigating water hammer during valve closure by an optimal boundary c…
High voltage insulation and dielectric phenomenaWater Systems and OptimizationGeotechnical Engineering and Underground Structures
Tingting Wang、Qinmiao Chen、Jin Chen 等 7 位作者2014-11-27ChemInform
Abstract Cu2ZnSnSe4 (CZTSe) nanocrystals are prepared via a one pot route using CuCl2, Zn(OAc)2, SnCl2, and Se (2:1.25:1:6, resp.) in oleylamine as surfactant and solvent.
Quantum Dots Synthesis And PropertiesChalcogenide Semiconductor Thin FilmsCopper-based nanomaterials and applications
Huan-Huan Chen、Yonghong Ni、Xiang Ma2014-11-27ChemInform
Abstract Nanosized CePO4 particles are synthesized from Ce(NO3)3 and KH2PO4 in ethylene glycol/H2O (oil bath, 110 °C, 30 min).
Catalytic Processes in Materials ScienceQuantum Dots Synthesis And PropertiesAdvanced Nanomaterials in Catalysis
Andreas Schneemann、Sebastian Henke、Inke Schwedler 等 4 位作者2014-11-27ChemInform
Abstract Review: 155 refs.
Metal-Organic Frameworks: Synthesis and ApplicationsMachine Learning in Materials ScienceCovalent Organic Framework Applications
Slawomir Podisiadlo、Maciej Bialoglowski、Grzegorz Matyszczak 等 9 位作者2014-11-27ChemInform
Abstract Bulk single crystals of Cu2ZnSnS4 of kesterite structure with dimensions up to 1 x 1 x 0.5 mm are prepared from naturally abundant CuS, ZnS, and SnS in a molar ratio of 2:1:1 (evacuated quartz ampule, 700 °C, 24—240 h).
Quantum Dots Synthesis And PropertiesChalcogenide Semiconductor Thin FilmsCopper-based nanomaterials and applications
Lei Fang、Ratnasabapathy G. Iyer、Gangjian Tan 等 6 位作者2014-11-27ChemInform
Abstract The title semiconductor with an indirect band gap of 0.45 eV is synthesized from a stoichiometric mixture of Tl, Sn, Sb2Se3, and Se (carbon‐coated quartz tube, 530 °C, 10 h).
Crystal Structures and PropertiesPhase-change materials and chalcogenidesSolid-state spectroscopy and crystallography