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首页> 外文期刊>ACS applied materials & interfaces >Cellulose Tailored Anatase TiO2 Nanospindles in Three-Dimensional Graphene Composites for High-Performance Supercapacitors
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Cellulose Tailored Anatase TiO2 Nanospindles in Three-Dimensional Graphene Composites for High-Performance Supercapacitors

机译:高性能超级电容器的三维石墨烯复合材料中的纤维素定制锐钛矿型TiO2纳米纺锤。

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The morphologies of transition metal oxides have decisive impact on the performance of their applications. Here, we report a new and facile strategy for in situ preparation of anatase TiO2 nanospindles in three-dimensional reduced graphene oxide (RGO), structure (3D TiO2@RGO) using cellulose as both an intermediate agent eliminating the negative effect of graphene oxide (GO) on the growth of TiO2 crystals and as a structure-directing agent for the shape-controlled synthesis of TiO2 crystals. High-resolution transmission electron microscopy and X-ray diffractometer analysis indicated that the spindle shape of TiO2 crystals was formed through the restriction of the growth of high energy {010} facets due to preferential adsorption of cellulose on these facets. Because of the 3D structure of the composite, the large aspect ratio of the TiO2 nanospindles, and the exposed high-energy {010} facets of the TiO2 crystals, the 3D TiO2@RGO(Ce 1.7) exhibited excellent capacitive performance as an electrode material for supercapacitors, with a high specific capacitance (ca. 397 F g(-1)), a high energy density (55.7 Wh kg(-1)), and a high power density (1327 W kg(-1)) on the basis of the masses of RGO and TiO2. These levels of capacitive performance far exceed those of previously reported TiO2-based composites.
机译:过渡金属氧化物的形态对其应用的性能具有决定性的影响。在这里,我们报告了一种新的,简便的策略,即使用纤维素作为中间剂消除三维氧化石墨烯的负面影响,在三维还原氧化石墨烯(RGO)结构(3D TiO2 @ RGO)中原位制备锐钛矿型TiO2纳米锭。 GO)在TiO2晶体的生长上作为结构导向剂用于TiO2晶体的合成。高分辨率透射电子显微镜和X射线衍射仪分析表明,由于纤维素在这些刻面上的优先吸附,限制了高能{010}刻面的生长,从而形成了TiO2晶体的纺锤形。由于复合材料的3D结构,TiO2纳米锭的高长径比以及TiO2晶体暴露的高能{010}面,因此3D TiO2 @ RGO(Ce 1.7)作为电极材料具有出色的电容性能。用于超级电容器,其上具有高的比电容(约397 F g(-1)),高能量密度(55.7 Wh kg(-1))和高功率密度(1327 W kg(-1)) RGO和TiO2的质量基础。这些电容性能水平远远超过了以前报道的基于TiO2的复合材料。

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