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ÎÞÎÛË®ÅÅ·ÅÄ͸ßΡ¢¾øÔµ·ÓÈ©Ê÷Ö¬¼°ÆäÖÆ±¸·½·¨£¬ZL**7.4£¬2006¶þ¡¢2014~2017·¢±íµÄÒ»ÇøÑо¿ÂÛÎÄ1. Effect of pyrolysis temperature of 3D graphene/carbon nanotubes anode materials on yield of carbon nanotubes and their electrochemical properties for Na-ion batteries. Chemical Engineering Journal, 2017, 317:793¨C7992. One-step hydrothermal synthesis of flaky attached hollow-sphere structure NiCo2S4 for electrochemical capacitor application. Chemical Engineering Journal, 2017, 317: 873¨C8813. Synthesis and superior lithium storage performances of hybrid hollow urchin-like silicate constructed by nanotubes wrapped in reduced graphene oxides. Electrochimica Acta, 2017, 245:361¨C3704. Fabricating three-dimensional hierarchical porous N-doped graphene by a tunable assembly method for interlayer assisted lithium-sulfur batteries. Chemical Engineering Journal, 2017, 327:855-8675. Synthesis of ZnS quantum dots and CoFe2O4 nanoparticles co-loaded with graphene nanosheets as an efficient broad band EM wave absorber. Chemical Engineering Journal, 2017, 308: 214-2216. Synthesis of magnetical nanoparticles decorated with reduced graphene oxide as an efficient broad band EM wave absorber, Journal of Alloys and Compounds, 2017, 692: 639-646.7. Soft-template hydrothermal systhesis of nanostructured Copper(II) Tungstate cubes for Electrochemical Charge Storage Application. Electrochimica Acta, 2016£¬220£º156-1638. ?¦Á-MoO3 nanorods coated with SnS2 nanosheets core-shell composite as high-performance anode materials of lithium ion batteries. Electrochimica Acta, 2016, 222: 956-964.9. Insight into the electrochemical behavior of lithium-sulfur cells assisted by potassium hydroxide activated carbon black and polyaniline nanorods. 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Superparamagnetic Fe3O4 nanoparticles on graphene¨Cpolyaniline: Synthesis, characterization and their excellent electromagnetic absorption properties. Journal of Alloys and Compounds, 2014, 596: 25-31.26. Synthesis, characterization and excellent electromagnetic wave absorption properties of graphene/poly (3,4-ethylenedioxythiophene) hybrid materials with Fe3O4 nanoparticles. Journal of Alloys and Compound, 2014, 617: 511-517Èý¡¢Ö÷±àµÄ¹ú¼Ò¼¶ÓëÊ¡²¿¼¶½Ì²Ä1. ¹¤ÒµºÍÐÅÏ¢»¯²¿¡°Ê®¶þÎ塱¹æ»®½Ì²Ä¡°»¯¹¤¹ý³Ì½ÚÄÜÓëÓÅ»¯Éè¼Æ¡±£¬Î÷±±¹¤Òµ´óѧ³ö°æÉ磬20172.ÆÕͨ¸ßµÈ½ÌÓý¡°Ê®Ò»Î塱¹ú¼Ò¼¶¹æ»®½Ì²Ä¡°»¯¹¤Éè¼Æ¡±£¬¿ÆÑ§³ö°æÉ磬2011.63.ÆÕͨ¸ßµÈ½ÌÓý¹æ»®½Ì²Ä¡°»¯¹¤¹ý³Ì¿ª·¢ÓëÉè¼Æ¡±£¬»¯Ñ§¹¤Òµ³ö°æÉ磬2008.34.¹ú·À¿Æ¹¤Î¯¡°Ê®Î塱¹æ»®½Ì²Ä¡°»¯¹¤¹ý³ÌÉè¼Æ¡±£¬Î÷±±¹¤Òµ´óѧ³ö°æÉ磬2005.4Ò»¡¢Ö÷Òª¿ÆÑлñ½±1.Ó¢¹ú»Ê¼Ò»¯Ñ§»á¡°Top 1%¸ß±»ÒýÖйú×÷Õß¡±£¬2017¡¢20162. 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