{"id":173945,"date":"2019-05-03T06:30:13","date_gmt":"2019-05-02T22:30:13","guid":{"rendered":"\/\/m.iemloyee.com\/?p=173945"},"modified":"2019-05-03T09:52:22","modified_gmt":"2019-05-03T01:52:22","slug":"%e6%9d%90%e6%96%99%e4%ba%ba%e6%8a%a5%e5%91%8a-%e7%99%be%e7%af%87%e6%9c%80%e9%ab%98%e5%bc%95%e8%8a%b1%e8%90%bd%e8%b0%81%e5%ae%b6-%e6%88%b3%e6%96%87%e7%9c%8b%e5%9b%bd%e5%86%85","status":"publish","type":"post","link":"\/\/m.iemloyee.com\/?p=173945","title":{"rendered":"\u6750\u6599\u4eba\u62a5\u544a | \u767e\u7bc7\u6700\u9ad8\u5f15\u82b1\u843d\u8c01\u5bb6 \u2014\u2014 \u6233\u6587\u770b\u56fd\u5185\u8be6\u60c5\u5206\u6790"},"content":{"rendered":"

\u672c\u6587\u4ee5web\u00a0of\u00a0science\u4e3a\u57fa\u7840\uff0c\u68c0\u7d22\u4e86\u4ece1884\u5e74\u52302019\u5e74\u6750\u6599\u9886\u57df\u4e2d\u56fd\u53c2\u4e0e\u7684\u76f8\u5173\u6587\u7ae0\uff0c\u6309\u7167\u5f15\u7528\u91cf\u4ece\u9ad8\u5230\u4f4e\u6392\u5217\uff0c\u627e\u51fa\u4e86\u4ece1884\u5e74\u52302018\u5e74\u6750\u6599\u9886\u57df\u4e2d\u56fd\u53c2\u4e0e\u7684\u5f15\u7528\u6700\u9ad8\u7684100\u7bc7\u6587\u7ae0\uff0c\u5e76\u5bf9\u5b83\u4eec\u8fdb\u884c\u4e86\u4e00\u7cfb\u5217\u7684\u5206\u6790\uff0c\u5927\u5bb6\u6765\u770b\u770b\u5427\u3002<\/p>\n

\u8fd9100\u7bc7\u6587\u7ae0\u4e2d\uff0c\u5f15\u7528\u91cf\u6700\u9ad8\u7684\u662f2013\u5e74\u53d1\u8868\u5728\u201cJournal\u00a0of\u00a0Physical\u00a0Chemistry\u00a0C\u201d\u4e0a\uff0c\u9898\u4e3a\u201cExploring High-Pressure Lithium Beryllium Hydrides: A New Chemical Perspective<\/a>\u201d\uff0c\u5f15\u7528\u6b21\u6570\u9ad8\u8fbe10284\u6b21\uff1b\u5f15\u7528\u91cf\u6700\u4f4e\u7684\u662f2002\u5e74\u53d1\u8868\u5728\u201cInternational Journal of Solids and Structures\u201d\u4e0a\uff0c\u9898\u4e3a\u201cCoupled\u00a0Stress\u00a0Based\u00a0Strain\u00a0Gradient\u00a0Theory\u00a0for\u00a0Elasticity\u201d\uff0c\u5f15\u7528\u6b21\u6570\u4e3a1426\u3002\u8fd9100\u7bc7\u6587\u7ae0\u4e2d\uff0c\u7814\u7a76\u578b\u8bba\u658775\u7bc7\uff0c\u7efc\u8ff025\u7bc7\u3002<\/p>\n

1.\u5e74\u4ee3\u5206\u5e03<\/b><\/strong><\/p>\n

\"\"<\/p>\n

\u4ece\u56fe\u4e0a\u53ef\u4ee5\u770b\u5230\uff0c\u8fd9100\u7bc7\u6587\u7ae0\uff0c\u670951\u7bc7\u5206\u5e03\u57282010-2019\u5e74\u533a\u95f4\uff0c\u670944\u7bc7\u5206\u5e03\u57282000-2010\u5e74\u533a\u95f4\uff0c5\u7bc7\u5206\u5e03\u57281990-2000\u5e74\u3002\u8fd9\u4e2a\u6570\u636e\u5f88\u80fd\u53cd\u6620\u8fd1\u4e8c\u5341\u5e74\u6765\uff0c\u4e2d\u56fd\u5728\u6750\u6599\u9886\u57df\u7814\u7a76\u7684\u7a81\u98de\u731b\u8fdb\u3002\u76f8\u4fe1\uff0c\u968f\u7740\u4e2d\u56fd\u6750\u6599\u79d1\u5b66\u9886\u57df\u7814\u7a76\u7684\u8fdb\u4e00\u6b65\u53d1\u5c55\uff0c\u672a\u6765\u8fd8\u4f1a\u6709\u66f4\u591a\u9ad8\u5f71\u54cd\u529b\u7684\u5de5\u4f5c\u4ea7\u751f\u3002<\/p>\n

2.\u673a\u6784\u5206\u5e03<\/b><\/strong><\/p>\n

\"\"<\/p>\n

\u8fd9\u91cc\u5bf9100\u7bc7\u6587\u7ae0\u4e2d\u6240\u6709\u53c2\u4e0e\u7684\u4e2d\u56fd\u7814\u7a76\u673a\u6784\u8fdb\u884c\u7edf\u8ba1\uff0c\u6240\u6709\u6570\u636e\u6765\u81eaweb\u00a0of\u00a0science\u3002\u4ece\u4e0a\u56fe\u53ef\u4ee5\u770b\u5230\uff0c\u4e2d\u79d1\u9662\u4ee535\u7bc7\u9065\u9065\u9886\u5148\u4e8e\u5176\u4ed6\u7814\u7a76\u673a\u6784\u6210\u4e3a\u7b2c\u4e00\uff1b\u6e05\u534e\u5927\u5b668\u7bc7\u4f4d\u5217\u7b2c\u4e8c\uff1b\u9999\u6e2f\u79d1\u6280\u5927\u5b66\u4ee57\u7bc7\u4f4d\u5217\u7b2c\u4e09\uff1b\u6d59\u6c5f\u5927\u5b665\u7bc7\u4f4d\u5217\u7b2c\u56db\uff1b\u4e2d\u56fd\u79d1\u5b66\u6280\u672f\u5927\u5b66\u3001\u590d\u65e6\u5927\u5b66\u3001\u534e\u5357\u7406\u5de5\u5927\u5b66\u548c\u6b66\u6c49\u7406\u5de5\u5927\u5b66\u4ee54\u7bc7\u5e76\u5217\u7b2c\u4e94\u3002\u53c2\u4e0e\u5230\u8fd9100\u7bc7\u6587\u7ae0\u7684\u4e2d\u56fd\u673a\u6784\u5747\u4e3a\u9ad8\u6821\u548c\u7814\u7a76\u9662\uff0c\u6ca1\u6709\u516c\u53f8\u3002<\/p>\n

\u9999\u6e2f\u79d1\u6280\u5927\u5b66\u7684\u5510\u672c\u5fe0\u9662\u58eb\u8bfe\u9898\u7ec4\u56e0\u4e3a\u8d21\u732e\u4e86\u7684\u56db\u7bc7\u6587\u7ae0\uff0c\u800c\u6210\u4e3a\u5165\u9009\u6587\u7ae0\u6570\u91cf\u6700\u591a\u7684\u8bfe\u9898\u7ec4\u3002\u8fd9\u56db\u7bc7\u6587\u7ae0\u5206\u522b\u662f2001\u5e74\u53d1\u8868\u5728chem. commun.\u4e0a\u7684\u201cAggregation-induced emission of 1-methyl-1,2,3,4,5-pentaphenylsilole<\/a>\u201d\uff1b2009\u5e74\u53d1\u8868\u5728chem. commun.\u4e0a\u7684\u201cAggregation-induced emission: phenomenon, mechanism and applications<\/a>\u201d<\/b><\/strong>\uff1b2011\u5e74\u53d1\u8868\u5728Chem. Soc.\u00a0Rev.\u4e0a\u7684\u201cAggregation-Induced\u00a0Emission\u201d\u4ee5\u53ca2015\u5e74\u53d1\u8868\u5728Chem. Rev.\u4e0a\u7684\u201cAggregation-Induced Emission: Together We Shine, United We Soar!<\/a>\u201d\u3002<\/p>\n

3.\u5b8c\u6210\u5355\u4f4d\u6570\u91cf<\/strong><\/p>\n

\"\"<\/p>\n

\u5728\u5408\u4f5c\u5355\u4f4d\u6570\u91cf\u7edf\u8ba1\u4e2d\uff0c\u6211\u4eec\u53d1\u73b0\u5927\u90e8\u5206\u5de5\u4f5c\u8fd8\u662f\u7531\u591a\u4e2a\u8bfe\u9898\u7ec4\u5171\u540c\u5b8c\u6210\u7684\u3002\u4ec5\u4e00\u4e2a\u5355\u4f4d\u5b8c\u6210\u7684\u6587\u7ae0\u5360\u670927\u7bc7\uff0c\u5176\u4e2d\u6709\u516d\u7bc7\u662f\u7efc\u8ff0\uff1b\u4e24\u4e2a\u5355\u4f4d\u5360\u670924\u4e2a\uff0c\u4e09\u4e2a\u5355\u4f4d21\u4e2a\uff0c\u56db\u4e2a\u5355\u4f4d14\u4e2a\uff0c\u4e94\u4e2a\u53ca\u5176\u4ee5\u4e0a\u4ec5\u670914\u4e2a\u3002<\/p>\n

4.\u9886\u57df\u5206\u5e03<\/b><\/strong><\/p>\n

\"\"<\/p>\n

\u5bf9\u8fd9100\u7bc7\u6587\u7ae0\u8fdb\u884c\u9886\u57df\u5f52\u7c7b\uff0c\u53ef\u4ee5\u53d1\u73b0\u4e00\u4e9b\u6bd4\u8f83\u6709\u8da3\u7684\u7ed3\u679c\u3002\u5728\u8fd9100\u7bc7\u6587\u7ae0\u4e2d\uff0c\u7eb3\u7c73\u76f8\u5173\u7684\u6587\u7ae0\u536040\u7bc7\uff0c\u5176\u6b21\u662f\u80fd\u6e90\u6750\u6599\u768438\u7bc7\uff0c\u968f\u540e\u4e8c\u7ef4\u6750\u659925\u7bc7\uff08\u5176\u4e2d\u670923\u7bc7\u548c\u77f3\u58a8\u70ef\u76f8\u5173\uff09\u3002\u91d1\u5c5e\u76f8\u5173\u7684\u6587\u7ae0\u670911\u7bc7\uff0c\u534a\u5bfc\u4f53\u76f8\u5173\u670910\u7bc7\uff0c\u5149\u7535\u6750\u65995\u7bc7\u3002\u8fd9\u4e2a\u6570\u636e\u4e0d\u96be\u53d1\u73b0\uff0c\u8fd9\u4e9b\u7814\u7a76\u65b9\u5f0f\u90fd\u662f\u8fd1\u5e74\u6765\u7684\u7814\u7a76\u5927\u70ed\u95e8\uff0c\u4e0d\u8fc7\u8fd9\u4e5f\u4e0e\u8fd9\u4e9b\u6587\u7ae0\u7684\u5e74\u4ee3\u5206\u5e03\u5bc6\u5207\u76f8\u5173\u3002<\/p>\n

5.\u671f\u520a\u5206\u5e03<\/b><\/strong><\/p>\n

\"\"<\/p>\n

\u7531\u4e8e\u8fd9100\u7bc7\u6587\u7ae0\u7684\u671f\u520a\u5206\u5e03\u5341\u5206\u5206\u6563\uff0c\u6211\u4eec\u8fd9\u91cc\u4ec5\u7edf\u8ba1\u6392\u5728\u524d\u4e94\u7684\u671f\u520a\u60c5\u51b5\u3002\u4ece\u56fe\u4e0a\u53ef\u4ee5\u770b\u5230\uff0cNature\u53ca\u5176\u5b50\u520a\u56e0\u4e3a\u8d21\u732e20\u7bc7\u6587\u7ae0\u800c\u4f4d\u5217\u7b2c\u4e00\uff08\u5176\u4e2dNature8\u7bc7\uff0cNature\u5b50\u520a12\u7bc7\uff09\uff1bScience\u56e0\u4e3a\u8d21\u732e14\u7bc7\u800c\u4f4d\u5217\u7b2c\u4e8c\uff1bChemical\u00a0Reviews\u4ee510\u7bc7\u4f4d\u5217\u7b2c\u4e09\uff1b\u6392\u5728\u7b2c\u56db\u7684\u662f\u8d21\u732e\u4e868\u7bc7\u7684Advanced\u00a0Materials\uff1bACS Nano\u51ed\u501f7\u7bc7\u6392\u5728\u7b2c\u4e94\u3002\u8fd9100\u7bc7\u6587\u7ae0\u57fa\u672c\u4e0a\u90fd\u5c5e\u4e8e\u4e3b\u6d41\u671f\u520a\u3002<\/p>\n

6.\u6587\u7ae0\u5217\u8868<\/strong><\/p>\n

1.Exploring High-Pressure Lithium Beryllium Hydrides: A New Chemical Perspective<\/a><\/p>\n

2.Dye-Sensitized Solar Cells<\/a><\/p>\n

3.A review on polymer nanofibers by electrospinning and their applications in nanocomposites<\/a><\/p>\n

4.A metal-free polymeric photocatalyst for hydrogen production from water under visible light<\/a><\/p>\n

5.Piezoelectric nanogenerators based on zinc oxide nanowire arrays<\/a><\/p>\n

6.A review of electrode materials for electrochemical supercapacitors<\/a><\/p>\n

7.Semiconductor-based Photocatalytic Hydrogen Generation<\/a><\/p>\n

8.TiO2 photocatalysis and related surface phenomena<\/a><\/p>\n

9.A chemically functionalizable nanoporous material [Cu-3(TMA)(2)(H2O)(3)](n)<\/a><\/p>\n

10.Multiwfn: A multifunctional wavefunction analyzer<\/a><\/p>\n

11.Luminescent Functional Metal-Organic Frameworks<\/a><\/p>\n

12.Topological insulators in Bi2Se3, Bi2Te3 and Sb2Te3 with a single Dirac cone on the surface<\/a><\/p>\n

13.Black phosphorus field-effect transistors<\/a><\/p>\n

14.Enhanced power-conversion efficiency in polymer solar cells using an inverted device structure<\/a><\/p>\n

15.Friction stir welding and processing<\/a><\/p>\n

16.High-thermoelectric performance of nanostructured bismuth antimony telluride bulk alloys<\/a><\/p>\n

17.Aggregation-induced emission of 1-methyl-1,2,3,4,5-pentaphenylsilole<\/a><\/p>\n

18.Aggregation-induced emission<\/a><\/p>\n

19.Super-hydrophobic surfaces: From natural to artificial<\/a><\/p>\n

20.Exceptional chemical and thermal stability of zeolitic imidazolate frameworks<\/a><\/p>\n

21.Anatase TiO2 single crystals with a large percentage of reactive facets<\/a><\/p>\n

22.Advanced Materials for Energy Storage<\/a><\/p>\n

23.Nitrogen-Doped Graphene as Efficient Metal-Free Electrocatalyst for Oxygen Reduction in Fuel Cells<\/a><\/p>\n

24.Flexible graphene films via the filtration of water-soluble noncovalent functionalized graphene sheets<\/a><\/p>\n

25.A review and recent developments in photocatalytic water-splitting using TiO2 for hydrogen production<\/a><\/p>\n

26.A Large and Persistent Carbon Sink in the World’s Forests<\/a><\/p>\n

27.Multiferroic magnetoelectric composites: Historical perspective, status, and future directions<\/a><\/p>\n

28.Three-dimensional flexible and conductive interconnected graphene networks grown by chemical vapour deposition<\/a><\/p>\n

29.Evaluation of solution-processed reduced graphene oxide films as transparent conductors<\/a><\/p>\n

30.Synthesis of tetrahexahedral platinum nanocrystals with high-index facets and high electro-oxidation activity<\/a><\/p>\n

31.Observation of a large-gap topological-insulator class with a single Dirac cone on the surface<\/a><\/p>\n

32.A general strategy for nanocrystal synthesis<\/a><\/p>\n

33.The reduction of graphene oxide<\/a><\/p>\n

34.Locally resonant sonic materials<\/a><\/p>\n

35.Aggregation-induced emission: phenomenon, mechanism and applications<\/a><\/p>\n

36.Experimental Realization of a Three-Dimensional Topological Insulator, Bi2Te3<\/a><\/p>\n

37.Graphene-Like Two-Dimensional Materials<\/a><\/p>\n

38.Long-distance quantum communication with atomic ensembles and linear optics<\/a><\/p>\n

39.Topological semimetal and Fermi-arc surface states in the electronic structure of pyrochlore iridates<\/a><\/p>\n

40.Self-Assembled Graphene Hydrogel via a One-Step Hydrothermal Process<\/a><\/p>\n

41.Bulk metallic glasses<\/a><\/p>\n

42.Ab initio modeling of quantum transport properties of molecular electronic devices<\/a><\/p>\n

43.Shell-isolated nanoparticle-enhanced Raman spectroscopy<\/a><\/p>\n

44.Aggregation and morphology control enables multiple cases of high-efficiency polymer solar cells<\/a><\/p>\n

45.Synthesis of N-Doped Graphene by Chemical Vapor Deposition and Its Electrical Properties<\/a><\/p>\n

46.Molecular Design of Photovoltaic Materials for Polymer Solar Cells: Toward Suitable Electronic Energy Levels and Broad Absorption<\/a><\/p>\n

47.Surface modification of titanium, titanium alloys, and related materials for biomedical applications<\/a><\/p>\n

48.Graphene Anchored with Co3O4 Nanoparticles as Anode of Lithium Ion Batteries with Enhanced Reversible Capacity and Cyclic Performance<\/a><\/p>\n

49.Two-photon polymerization initiators for three-dimensional optical data storage and microfabrication<\/a><\/p>\n

50.Coupled Spin and Valley Physics in Monolayers of MoS2 and Other Group-VI Dichalcogenides<\/a><\/p>\n

51.Epidermal Electronics<\/a><\/p>\n

52.Aggregation-Induced Emission: Together We Shine, United We Soar!<\/a><\/p>\n

53.Effects of F- doping on the photocatalytic activity and microstructures of nanocrystalline TiO2 powders<\/a><\/p>\n

54.Graphene-Based Supercapacitor with an Ultrahigh Energy Density<\/a><\/p>\n

55.Hydrogen storage in single-walled carbon nanotubes at room temperature<\/a><\/p>\n

56.Green luminescent center in undoped zinc oxide films deposited on silicon substrates<\/a><\/p>\n

57.Semiconducting pi-Conjugated Systems in Field-Effect Transistors: A Material Odyssey of Organic Electronics<\/a><\/p>\n

58.Intrinsic peroxidase-like activity of ferromagnetic nanoparticles<\/a><\/p>\n

59.Hyperbranched polymers: from synthesis to applications<\/a><\/p>\n

60.Graphene-based semiconductor photocatalysts<\/a><\/p>\n

61.Understanding TiO2 Photocatalysis: Mechanisms and Materials<\/a><\/p>\n

62.Simultaneous Enhancement of Open-Circuit Voltage, Short-Circuit Current Density, and Fill Factor in Polymer Solar Cells<\/a><\/p>\n

63.Evolution of Organic Aerosols in the Atmosphere<\/a><\/p>\n

64.Valley polarization in MoS2 monolayers by optical pumping<\/a><\/p>\n

65.Large-scale synthesis of aligned carbon nanotubes<\/a><\/p>\n

66.Graphene Oxide: Preparation, Functionalization, and Electrochemical Applications<\/a><\/p>\n

67.A Graphene Platform for Sensing Biomolecules<\/a><\/p>\n

68.Ultrahigh strength and high electrical conductivity in copper<\/a><\/p>\n

69.On the controllable soft-templating approach to mesoporous silicates<\/a><\/p>\n

70.Colloidal carbon spheres and their core\/shell structures with noble-metal nanoparticles<\/a><\/p>\n

71.Fabrication and ethanol sensing characteristics of ZnO nanowire gas sensors<\/a><\/p>\n

72.Supercapacitor Devices Based on Graphene Materials<\/a><\/p>\n

73.Carbon Materials for Chemical Capacitive Energy Storage<\/a><\/p>\n

74.Principle of equal-channel angular pressing for the processing of ultra-fine grained materials<\/a><\/p>\n

75.Highly Photoluminescent Carbon Dots for Multicolor Patterning, Sensors, and Bioimaging<\/a><\/p>\n

76.Bioinspired surfaces with special wettability<\/a><\/p>\n

77.Supercapacitors Based on Flexible Graphene\/Polyaniline Nanofiber Composite Films<\/a><\/p>\n

78.High-mobility transport anisotropy and linear dichroism in few-layer black phosphorus<\/a><\/p>\n

79.Nanostructured materials for electrochemical energy conversion and storage devices<\/a><\/p>\n

80.Metal-free efficient photocatalyst for stable visible water splitting via a two-electron pathway<\/a><\/p>\n

81.Magnetic order close to superconductivity in the iron-based layered LaO(1-x)F(x)FeAs systems<\/a><\/p>\n

82.Recent Advances in Metal Oxide-based Electrode Architecture Design for Electrochemical Energy Storage<\/a><\/p>\n

83.A Green Approach to the Synthesis of Graphene Nanosheets<\/a><\/p>\n

84.Highly conducting graphene sheets and Langmuir-Blodgett films<\/a><\/p>\n

85.A hole-conductor-free, fully printable mesoscopic perovskite solar cell with high stability<\/a><\/p>\n

86.Graphene plasmonics for tunable terahertz metamaterials<\/a><\/p>\n

87.Highly Efficient Visible-Light-Driven Photocatalytic Hydrogen Production of CdS-Cluster-Decorated Graphene Nanosheets<\/a><\/p>\n

88.Hydrothermal Route for Cutting Graphene Sheets into Blue-Luminescent Graphene Quantum Dots<\/a><\/p>\n

89.3D Aperiodic Hierarchical Porous Graphitic Carbon Material for High-Rate Electrochemical Capacitive Energy Storage<\/a><\/p>\n

90.Synergetic Effect of MoS2 and Graphene as Cocatalysts for Enhanced Photocatalytic H-2 Production Activity of TiO2 Nanoparticles<\/a><\/p>\n

91.Low-temperature oxidation of CO catalysed by Co3O4 nanorods<\/a><\/p>\n

92.Room-temperature stationary sodium-ion batteries for large-scale electric energy storage<\/a><\/p>\n

93.Superconductivity at 43 K in SmFeAsO(1-x)F(x)<\/a><\/p>\n

94.Metal-Organic Frameworks with Functional Pores for Recognition of Small Molecules<\/a><\/p>\n

95.C-C, C-O and C-N bond formation via rhodium(III)-catalyzed oxidative C-H activation<\/a><\/p>\n

96.Graphene Oxide-MnO2 Nanocomposites for Supercapacitors<\/a><\/p>\n

97.Hydrogen-Treated TiO2 Nanowire Arrays for Photoelectrochemical Water Splitting<\/a><\/p>\n

98.Direct C-H Transformation via Iron Catalysis<\/a><\/p>\n

99.Graphene in Mice: Ultrahigh In Vivo Tumor Uptake and Efficient Photothermal Therapy<\/a><\/p>\n

100.Couple stress based strain gradient theory for elasticity<\/a><\/p>\n

\u5f80\u671f\u56de\u987e\uff1a<\/strong><\/p>\n

\u90a3\u4e9b\u5e74\uff0c\u6211\u4eec\u5728SCI\u4e2d\u5403\u8fc7\u7684\u72d7\u7cae\u2026<\/a><\/p>\n

\u6211\u4e5f\u66fe\u60f3\u652f\u6301\u56fd\u4ea7\u671f\u520a\uff0c\u4f46\u73b0\u5b9e\u8ba9\u6211\u9009\u62e9\u4e86SCI\uff01<\/a><\/p>\n

SCI\u671f\u520a2019\u5e74\u5f71\u54cd\u56e0\u5b50\u9884\u6d4b\uff0c\u6750\u6599\u3001\u5316\u5b66\u3001\u7eb3\u7c73\u7c7b<\/a><\/p>\n

\u76d8\u70b9\u4e00\u5e74\u591a\u6765\u5341\u5927\u65b0\u589e\u671f\u520a \u4f60\u51c6\u5907\u6295\u54ea\u4e2a\uff1f\u5f71\u54cd\u56e0\u5b50\u5c06\u662f\u591a\u5c11<\/a><\/p>\n

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