{"id":133,"date":"2020-04-15T16:30:35","date_gmt":"2020-04-15T07:30:35","guid":{"rendered":"https:\/\/c-mng.cwh.hokudai.ac.jp\/lifm.eng\/Root\/?page_id=133"},"modified":"2024-10-11T15:25:49","modified_gmt":"2024-10-11T06:25:49","slug":"publication","status":"publish","type":"page","link":"https:\/\/c-mng.cwh.hokudai.ac.jp\/lifm.eng\/Root\/publication.html","title":{"rendered":"\u8ad6\u6587\u767a\u8868"},"content":{"rendered":"
<\/a><\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n \n<\/ul>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n<\/ul>\n<\/div>\n<\/div>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n \n<\/ul>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n \n<\/ul>\n<\/div>\n<\/div>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/br><\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\n <\/p>\nI. \u539f\u8457\u8ad6\u6587\u30fb\u7dcf\u8aac\u30fb\u89e3\u8aac<\/h2>\n
\u25bc2024<\/h3>\n
\n
\n“\u7570\u7a2e\u5143\u7d20\u7f6e\u63db\u30b0\u30e9\u30d5\u30a7\u30f3\u62c5\u6301\u767d\u91d1\u5358\u539f\u5b50\u89e6\u5a92\u306e\u5b89\u5b9a\u6027\u3068\u9178\u7d20\u9084\u5143\u53cd\u5fdc\u6d3b\u6027”
\n\u89e6\u5a92, Vol. 66, pp. 259\u2013265 (2024).<\/a>\n<\/li>\n
\n“\u30b0\u30e9\u30d5\u30a7\u30f3\u3078\u306e\u7570\u7a2e\u5143\u7d20\u30c9\u30fc\u30d7\u306b\u3088\u308b\u5fae\u7d30\u91d1\u5c5e\u89e6\u5a92\u306e\u9577\u5bff\u547d\u5316”
\n\u307e\u3066\u308a\u3042, Vol. 63, pp. 227\u2013235 (2024).<\/a>\n<\/li>\n
\n“The Development of the Regenerable Catalytic System in Selective Catalytic Oxidation of Ammonia with High N2<\/sub> Selectivity”
\nACS Appl. Mater. Interfaces, Vol. 16, pp. 18693\u201318702 (2024).<\/a>\n<\/li>\n
\n“Unveiling the origin of fast hydride ion diffusion at grain boundaries in nanocrystalline TiN membranes”
\nACS Omega, Vol. 9, pp. 13738\u201313745 (2024).<\/a>\n<\/li>\n
\n“Effect of Silver Diamine Fluoride on Bonding Performance and Ultra-morphological Characteristics to Sound Dentin”
\nDental Materials, Vol. 40, pp. e24\u2013e32 (2024).<\/a>\n<\/li>\n
\n“Decoration of Gold and Platinum Nanoparticle Catalysts by 1 nm Thick Metal Oxide Overlayer and Its Effect on the CO Oxidation Activity”
\nACS Applied Materials & Interfaces, Vol. 16, pp. 4570-4580 (2024).<\/a>\n<\/li>\n
\n“Shell-driven localized oxide nanoparticles determine thermal stability of micro-encapsulated phase change material”
\nACS Applied Materials & Interfaces, Vol. 16, pp. 3509-3519 (2024).<\/a>\n<\/li>\n\u25bc2023<\/h3>\n
\n
\n“Effects of Short-Term Exposure of Chloramine-T Solution on the Characteristics of Light-Cured and Chemical-Cured Adhesives”
\nPolymers, Vol. 15, pp. 3995 (2023).<\/a>\n<\/li>\n
\n“Noncontact Layer Stabilization of Azafullerene Radicals: Route toward High-Spin-Density Surfaces”
\nACS Nano, Vol. 17, pp. 25301\u201325310 (2023).<\/a>\n<\/li>\n
\n“Gold\/Substituted Hydroxyapatites for Oxidative Esterification: Control of Thin Apatite Layer on Gold Based on Strong Metal\u2013Support Interaction (SMSI) Results in High Activity”
\nACS Applied Materials & Interfaces, Vol. 15, pp. 34290-34302 (2023).<\/a>\n<\/li>\n
\n“Au Clusters Supported on Defect-Rich Ni-Ti Oxides Derived from Ultrafine Layered Double Hydroxides (LDHs) for CO Oxidation at Ambient Temperature”
\nCatalysts, Vol. 13, pp. 1155 (2023).<\/a>\n<\/li>\n
\n“Long Spin Coherence Times on C59<\/sub>N-C60<\/sub> Heterodimer Radicals Entrapped in Cycloparaphenylene Rings”
\nThe Journal of Physical Chemistry C, Vol. 127, pp. 6552-6561 (2023).<\/a>\n<\/li>\n
\n“Effects of Normalizing Temperature on the Precipi-tation of Fine Particles and Austenite Grain Growth during Carburization of Al- and Nb-Microalloyed Case-Hardening Steel”
\nISIJ International, Vol. 63, pp. 727-736 (2023).<\/a>\n<\/li>\n\u25bc2022<\/h3>\n
\n
\n“Chemical modification of graphene for atomic-scale catalyst supports”
\nNano Express, Vol. 3, pp. 042001 (2022).<\/a>\n<\/li>\n
\n“Oxygen Separation Performance of Ca2<\/sub>AlMnO5+\u03b4<\/sub> as an Oxygen Storage Material for High-Temperature Pressure Swing Adsorption”
\nISIJ International, Vol. 62, pp. 2578-2586 (2022).<\/a>\n<\/li>\n
\n“Enhancement effect of strong metal-support interaction (SMSI) on the catalytic activity of substituted-hydroxyapatite supported Au clusters”
\nJournal of Catalysis, Vol. 410, pp. 194-205 (2022).<\/a>\n<\/li>\n
\n“Understanding the Distinct Effects of Ag Nanoparticles and Highly Dispersed Ag Species on N2<\/sub> Selectivity in NH3<\/sub>\u2013SCO Reaction”
\nACS Catalysis, Vol. 12, pp. 6108-6118 (2022).<\/a>\n<\/li>\n
\n“Defective NiO as a Stabilizer for Au Single-Atom Catalysts”
\nACS Catalysis, Vol. 12, pp. 6149-6158 (2022).<\/a>\n<\/li>\n
\n“Chain Formation during Hydrogen Loss and Reconstruction in Carbon Nanobelts”
\nNanomaterials, Vol. 12, pp. 2073 (2022).<\/a>\n<\/li>\n
\n“Anisotropic Growth of Copper Nanorods Mediated by Cl\u2013<\/sup> Ions”
\nACS Omega, Vol. 7, pp. 7414\u20137420 (2022).<\/a>\n<\/li>\n\u25bc2021<\/h3>\n
\n
\n“Sr-Doped Ca2<\/sub>AlMnO5+\u03b4<\/sub> for Energy-Saving Oxygen Separation Process”
\nACS Sustainable Chemistry & Engineering, Vol. 9, pp. 9317-9326 (2021).<\/a>\n<\/li>\n
\n“Effects of Cooling Rate after Hot Forging on Precipitation of Fine Particles during Subsequent Normalizing and Austenite Grain Growth during Carburization of Al- and Nb-microalloyed Case-hardening Steel”
\nISIJ International, Vol. 61, pp. 1964-1970 (2021).<\/a>\n<\/li>\n
\n“Catalyst-loaded micro-encapsulated phase change material for thermal control of exothermic reaction”
\nScientific Reports, Vol. 11, pp. 7539 (2021).<\/a>\n<\/li>\n
\n“Single Pt Atoms on N-Doped Graphene: Atomic Structure and Local Electronic States”
\nThe Journal of Physical Chemistry C, Vol. 125, pp. 2900\u20132906 (2021).<\/a>\n<\/li>\n
\nN. Sakaguchi, T. Toyao, K. Shimizu, S. Ishikawa, W. Ueda, M. Haruta, T. Murayama
\n“Bulk tungsten-substituted vanadium oxide for lowtemperature
\nNOx<\/sub> removal in the presence of water”
\nNature Communications, Vol. 12, pp. 557 (2021).<\/a>\n<\/li>\n
\n“In-situ<\/I> observation of abnormal grain growth in a low-alloyed carbon steel using SEM-EBSD”
\nMaterialia, Vol. 15, pp. 100985 (2021).<\/a>\n<\/li>\n
\n“Rapid oxygen storage and release with Brownmillerite-structured Ca2<\/sub>AlMnO5<\/sub>“
\nJournal of Alloys and Compounds, Vol. 851, pp. 156817 (2021).<\/a>\n<\/li>\n
\n“Effect of conditioning and 1\u202fyear aging on the bond strength and interfacial morphology of glass-ionomer cement bonded to dentin”
\nDental Materials, Vol. 37, pp. 106-112 (2021).<\/a>\n<\/li>\n\u25bc2020<\/h3>\n
\n
\n“Stable aqueous dispersions of carbon nanohorns loaded with minocycline and exhibiting antibacterial activity”
\nCarbon, Vol. 166, pp. 36-45 (2020).<\/a>\n<\/li>\n
\n“Effects of Concentrations of Micro-alloying Elements and Hot-forging Temperature on Austenite Grain Structure Formed during Carburization of Case-hardening Steel”
\nISIJ International, Vol. 60, pp. 2549\u20132557 (2020).<\/a>(open access)\n<\/li>\n
\n“\u30b0\u30e9\u30d5\u30a7\u30f3\u62c5\u6301Pt\u30b5\u30d6\u30ca\u30ce\u30af\u30e9\u30b9\u30bf\u306e\u9178\u7d20\u9084\u5143\u53cd\u5fdc\u6d3b\u6027”
\n\u8868\u9762\u3068\u771f\u7a7a, Vol. 63, pp. 413-418 (2020).<\/a>\n<\/li>\n
\n“\u6c37\u304a\u3088\u3073\u9280\u8868\u9762\u4e0a\u3067\u306e\u6c34\u7d20\u5206\u5b50\u5438\u7740\u30b7\u30df\u30e5\u30ec\u30fc\u30b7\u30e7\u30f3”
\n\u4f4e\u6e29\u79d1\u5b66, Vol. 78, pp. 181-190 (2020).<\/a>(open access)\n<\/li>\n
\n“Co-appearance of superconductivity and ferromagnetism in a Ca2<\/sub>RuO4<\/sub> nanofilm crystal”
\nScientific Reports, Vol. 10, pp. 3462-2104 (2020).<\/a>(open access)<\/li>\n<\/ul>\n\u25bc2019<\/h3>\n
\n
\n“\u5148\u9032\u30ca\u30ce\u69cb\u9020\u30fb\u72b6\u614b\u89e3\u6790\u5171\u7528\u62e0\u70b9\uff08\u5317\u6d77\u9053\u5927\u5b66\uff09”
\n\u307e\u3066\u308a\u3042, Vol. 58, pp. 758-762 (2019). <\/a><\/li>\n
\n“Effects of Fine Precipitates on Austenite Grain Refinement of Micro-alloyed Steel during Cyclic Heat Treatment”
\nISIJ International, Vol. 59, pp. 2098-2104 (2019).<\/a>(open access)<\/li>\n
\n“Austenite memory during reverse transformation of steels at different heating rates”
\nMaterialia, Vol. 7, pp. 100409 (2019).<\/a><\/li>\n
\n“Extraordinarily Large Kinetic Isotope Effect on Alkene Hydrogenation over Rh-based Intermetallic Compounds”
\nScience and Technology of Advanced Materials, Vol. 20, pp. 805-812 (2019).<\/a>(open access)<\/li>\n
\n“\u30b0\u30e9\u30d5\u30a7\u30f3\u4e0a\u3067\u306e\u91d1\u5c5e\u539f\u5b50\u5438\u7740\u72b6\u614b\u306e\u7406\u8ad6\u7684\u7814\u7a76”
\n\u8868\u9762\u3068\u771f\u7a7a, Vol. 62, pp. 344-349 (2019). <\/a><\/li>\n
\n“Exploration of Long-Life Pt\/Heteroatom-Doped Graphene Catalysts in Hydrogen Atmosphere”
\nACS Omega, Vol. 4, pp. 6573-6584 (2019). <\/a>(open access)<\/li>\n
\n“Interaction of Localized Surface Plasmons of a Silver Nanosphere Dimer Embedded in a Uniform Medium: STEM-EELS and DDA Simulation”
\nThe Journal of Physical Chemistry C, Vol. 123, pp. 6735-6744 (2019). <\/a><\/li>\n
\n“Fate of Carbon Nanotubes Locally Implanted in Mice Evaluated by Near-Infrared Fluorescence Imaging: Implications for Tissue Regeneration”
\nACS Applied Nano Materials, Vol. 2, pp. 1382-1390 (2019). <\/a><\/li>\n
\n“Effect of Nickel Concentration on Radiation-Induced Diffusion of Point Defects in High-Nickel Fe\u2013Cr\u2013Ni Model Alloys during Neutron and Electron Irradiation”
\nMaterials Transactions, Vol. 60, pp. 678-687 (2019).<\/a>(open access)<\/li>\n
\n“Crystalline Evaluation of Size-Controlled Silicon and Silicon Oxide Nanoparticles Produced by Solution Plasma Discharge”
\nMaterials Transactions, Vol. 60, pp. 688-692 (2019).<\/a>(open access)<\/li>\n
\n“Hydrogen isotope absorption in unary oxides and nitrides with anion vacancies and substitution”
\nChemPhysChem, Vol. 20, pp. 1369-1375 (2019).<\/a>(open access)<\/li>\n
\n“Sr Substitution Effects on Atomic and Local Electronic Structure of Ca2<\/sub>AlMnO5+\u03b4<\/sub>”
\nSurface and Interface Analysis, Vol. 51, pp. 65-69 (2019).<\/a>
\nHUSCAP.<\/a>(open access, author version)<\/li>\n
\n“Combustion synthesis of AlN doped with carbon and oxygen”
\nJournal of the American Ceramic Society, Vol. 102, pp. 524-532 (2019).<\/a>(open access)<\/li>\n
\n“Nanostructural characterization of ordered gold particle arrays fabricated via aluminum anodizing, sputter coating, and dewetting”
\nApplied Surface Science, Vol. 465, pp. 747-753 (2019).<\/a><\/li>\n<\/ul>\n<\/div>\n<\/div>\n\u25bc2018<\/h2>\n
\n
\n“Adsorption and Diffusion Properties of a Single Iron Atom on Light-Element-Doped Graphene”
\ne-Journal of Surface Science and Nanotechnology, Vol.16, pp. 193-200 (2018).<\/a>(open access)<\/li>\n
\n“Solution-Plasma-Mediated Synthesis of Si Nanoparticles for Anode Material of Lithium-Ion Batteries”
\nNanomaterials, Vol. 8, pp. 286 (2018).<\/a>(open access)<\/li>\n
\n“Carbon Monoxide Oxidation by Polyoxometalate-Supported Gold Nanoparticulate Catalysts: Activity, Stability, and Temperature- Dependent Activation Properties”
\nAngewandte Chemie International Edition, Vol. 57, pp. 1523-1527 (2018). <\/a><\/li>\n
\n“Enhanced hydrogen permeability of hafnium nitride nanocrystalline membranes by interfacial hydridic conduction”
\nJournal of Materials Chemistry A, Vol. 6, pp. 2730-2741 (2018). <\/a><\/li>\n
\n“Combustion synthesis of YAG:Ce phosphors via the thermite reaction of aluminum”
\nJournal of Rare Earths, Vol. 36, pp. 248-256 (2018).<\/a><\/li>\n<\/ul>\n\u25bc2017<\/h2>\n
\n
\n“Inelastic Electron Tunneling Mediated by Molecular Quantum Rotator”
\nPhysical Review B, Vol. 96, pp. 241409(R) (2017). <\/a><\/li>\n
\n“\u7a92\u5316\u30c1\u30bf\u30f3\u5fae\u7d50\u6676\u819c\u306b\u304a\u3051\u308b\u30d2\u30c9\u30ea\u30c9\u30a4\u30aa\u30f3\u4f1d\u5c0e\u306e\u767a\u73fe\u3068\u305d\u308c\u306b\u3088\u308b\u5e38\u6e29\u6c34\u7d20\u819c\u5206\u96e2”
\n\u771f\u7a7a\u6280\u8853\u5354\u4f1a\u8a8c\uff0cVol. 132, pp. 32-41 (2017).<\/li>\n
\n“Hydrogen separation by nanocrystalline titanium nitride membranes with high hydride ion conductivity”
\nNature Energy, Vol. 2, pp. 786-794 (2017). <\/a>
\n\u65e5\u672c\u8a9e\u8a18\u4e8b<\/a><\/li>\n
\n“Diffusion of a Single Platinum Atom on Light-Element Doped Graphene”
\nThe Journal of Physical Chemistry C, Vol. 121, pp.17787-17795 (2017). <\/a><\/li>\n
\n“Combustion synthesis of Ca-\u03b1-SiAlON:Eu2+<\/sup> phosphors with different Ca concentrations and diluent ratios”
\nCeramics International, Vol. 43, pp. 12396-12401 (2017).<\/a>
\nHUSCAP.<\/a>(open access, author version)<\/li>\n
\n“Estimating the Spatial Distribution of Ca Dopants in \u03b1-SiAlON by Statistical Analysis of HAADF-STEM Image”
\nMaterials Transactions, Vol. 58, pp. 1341-1345 (2017).<\/a>(open access)<\/li>\n
\n“\u8a08\u7b97\u79d1\u5b66\u7684\u624b\u6cd5\u306b\u3088\u308b\u6c37\u8868\u9762\u4e0a\u3067\u306e\u6c34\u7d20\u5206\u5b50\u306e\u5438\u7740\u7279\u6027\u306e\u89e3\u660e”
\nJournal of the Vacuum Society of Japan, Vol. 60, pp.249-255 (2017).<\/a> (\u4f9d\u983c\u8ad6\u6587, oepn access)<\/li>\n
\n“Effects of Al particle size and nitrogen pressure on AlN combustion synthesis”
\nCeramics International, Vol. 43, pp.9872-9876 (2017).<\/a><\/li>\n
\n“Synthesis of \u03b5-Keggin-Type Cobaltomolybdate-Based 3D Framework Material and Characterization Using Atomic-Scale HAADF-STEM and XANES”
\nInorganic Chemistry, Vol. 56, pp.2042-2049 (2017)<\/a><\/li>\n
\n“Three-dimensional analysis of Eu dopant atoms in Ca-\u03b1-SiAlON via through-focus HAADF-STEM imaging”
\nUltramicroscopy, Vol. 175, pp.97-104 (2017).<\/a>
\nHUSCAP.<\/a>(open access, author version)<\/li>\n
\n“Enhanced cycling performance of surface-doped LiMn2<\/sub>O4<\/sub> modified by a Li2<\/sub>CuO2<\/sub>-Li2<\/sub>NiO2<\/sub> solid solution for rechargeable lithium-ion batteries”
\nElectrochimica Acta, Vol. 224, pp. 71-79 (2017).<\/a>
\nHUSCAP.<\/a>(open access, author version)<\/li>\n
\n“Atomic and local electronic structures of Ca2<\/sub>AlMnO5+\u03b4<\/sub> as an oxygen storage material”
\nChemistry of Materials, Vol. 29, pp. 648-655 (2017).
\n<\/a><\/li>\n
\n“Microencapsulated phase change materials with high heat capacity and high cyclic durability for high-temperature thermal energy storage and transportation”
\nApplied Energy, Vol. 188, pp. 9-18 (2017).
\n<\/a><\/li>\n<\/ul>\n<\/div>\n<\/div>\n\u25bc2016<\/h3>\n
\n
\n“Influence of gas injection pipe on CO2<\/sub> decomposition by CaCl2<\/sub>-CaO molten salt and ZrO2<\/sub> solid electrolysis”
\nISIJ International, Vol. 56, pp. 2093-2099 (2016).
\n<\/a>(open access)<\/li>\n
\n“Limonitic Laterite Ore as A Catalyst for the Dry Reforming of Methane”
\nEnergy & Fuels, Vol. 30, pp. 8457-8462 (2016).
\n<\/a><\/li>\n
\n“Twin formation in hematite during dehydration of goethite”
\nPhysics and Chemistry of Minerals, Vol. 43, pp. 749-757 (2016).<\/a>
\nHUSCAP.<\/a>(open access, author version)<\/li>\n
\n“Carbon nanohorns allow acceleration of osteoblast differentiation via macrophages activation”
\nNanoscale, Vol. 8, pp. 14514-14522 (2016).<\/a>(open access)<\/li>\n
\n“Measurement of the dielectric function of \u03b1-Al2<\/sub>O3<\/sub> by transmission electron microscopy-electron energy-loss spectroscopy without Cerenkov radiation effects”
\nUltramicroscopy, Vol. 169, pp. 37-43 (2016).<\/a><\/li>\n
\n“Al(111)\u8868\u9762\u8fd1\u508d\u3067\u306e\u6c34\u7d20\u539f\u5b50\u306e\u62e1\u6563\u7279\u6027\u306b\u304a\u3051\u308b\u6b20\u9665\u53ca\u3073\u5408\u91d1\u5143\u7d20\u306e\u5f71\u97ff”
\n\u65e5\u672c\u91d1\u5c5e\u5b66\u4f1a\u8a8c, Vol. 80 pp. 570-574 (2016).<\/a>(open access)<\/li>\n
\n“Optimization of the dehydration temperature of goethite to control pore morphology”
\nISIJ International, Vol. 56, No. 9, pp.1598-1605 (2016).<\/a>(open access)<\/li>\n
\n“Solution combustion synthesis of porous Sn-C composite as anode material for lithium ion batteries”
\nAdvanced Powder Technology, Vol. 27, pp. 1730-1737 (2016).<\/a><\/li>\n
\n“Improving the measurement of dielectric function by TEM-EELS: avoiding the retardation effect”
\nMicroscopy, Vol. 65, pp. 415\u2013421 (2016).<\/a>
\nHUSCAP.<\/a>(open access, author version)<\/li>\n
\n“Estimating the dopant distribution in Ca-doped \u03b1-SiAlON: statistical HAADF-STEM analysis and large-scale atomic modeling”
\nMicroscopy, Vol. 65, pp. 400\u2013406 (2016).<\/a>
\nHUSCAP.<\/a>(open access, author version)<\/li>\n
\n“Improved electrochemical performance of LiMn2<\/sub>O4<\/sub> surface-modified by a Mn4+<\/sup>-rich phase for rechargeable lithium-ion batteries”
\nElectrochimica Acta, Vol. 209, pp. 225-234 (2016).<\/a><\/li>\n
\n“Salt-assisted combustion synthesis of Ca-\u03b1-SiAlON:Eu2+<\/sup> phosphors”
\nJournal of Alloys and Compounds, Vol. 681, pp. 22\u201327 (2016).<\/a><\/li>\n
\n“\u6eb6\u878dCaCl2<\/sub>-CaO\u3068ZrO2<\/sub>\u56fa\u4f53\u96fb\u89e3\u8cea\u3092\u7528\u3044\u305fCO2<\/sub>\u30ac\u30b9\u5206\u89e3\u306b\u4e0e\u3048\u308b\u30ac\u30b9\u5c0e\u5165\u7ba1\u306e\u5f71\u97ff”
\n\u9244\u3068\u92fc, Vol. 102, pp. 219\u2013225 (2016).<\/a>(open access)<\/li>\n
\n“Self-ordered Porous Alumina Fabricated via Phosphonic Acid Anodizing”
\nElectrochimica Acta, Vol. 190, pp. 471\u2013479 (2016).<\/a>
\nHUSCAP.<\/a>(open access, author version)<\/li>\n
\n“MnO nanocrystals incorporated in a N-containing carbon matrix for Li ion battery anodes”
\nRSC Advances, Vol. 6, pp. 30445\u201330453 (2016).<\/a>(open access)<\/li>\n<\/ul>\n\u25bc2015<\/h3>\n
\n
\n“Phason space analysis and structure modelling of 100 \u00c5-scale dodecagonal quasicrystal in Mn-based alloy”
\nPhilosophical Magazine, Vol. 95, pp. 3745\u20133767 (2015).<\/a>
\nHUSCAP.<\/a>(open access, author version)<\/li>\n
\n“Fabrication of a novel aluminum surface covered by numerous high-aspect-ratio anodic alumina nanofibers”
\nApplied Surface Science, Vol. 356, pp. 54-62 (2015).<\/a>
\nHUSCAP.<\/a>(open access, author version)<\/li>\n
\n“Microencapsulation of Metal-based Phase Change Material for High-temperature Thermal Energy Storage”
\nScientific Reports, (2015) Vol. 5 9117.<\/a>(open access)<\/li>\n
\n“Nanomaterial synthesis using plasma generation in liquid”
\nJournal of Nanomaterials, Vol. 2015, 123696 (2015).<\/a>(open access)<\/li>\n
\n“Glycine\u2013nitrate-based solution-combustion synthesis of SrTiO3”
\nJournal of Alloys and Compounds, Vol. 652, pp. 496-502 (2015).<\/a><\/li>\n
\n“Improved electrochemical properties of LiMn2O4 with the Bi and La co-doping for lithium-ion batteries”
\nRSC Advances, Vol. 5, pp. 73315\u201373322 (2015).<\/a>(open access)<\/li>\n
\n“Carbon nanotube synthesis via the calciothermic reduction of carbon dioxide with iron additives”
\nECS Solid State Letters, Vol. 4, pp. M19-M22 (2015).<\/a>(open access)<\/li>\n
\n“Ultrathin inorganic molecular nanowire based on polyoxometalates”
\nNature Communications, Vol. 6 (2015).<\/a>(open access)<\/li>\n
\n“Urchin-like hollow-structured cobalt oxides with excellent anode performance for lithium-ion batteries”
\nJournal of Alloys and Compounds , Vol. 646, pp. 639-646 (2015). <\/a><\/li>\n
\n“Generation of solution plasma over a large electrode surface area”
\nJournal of Applied Physics, Vol. 118, pp. 023303 (2015). <\/a>
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