材料科学
石墨烯
阳极
三元运算
纳米技术
异质结
纳米棒
锂(药物)
纳米颗粒
掺杂剂
背景(考古学)
储能
化学工程
兴奋剂
电极
光电子学
功率(物理)
物理化学
程序设计语言
计算机科学
化学
古生物学
量子力学
内分泌学
工程类
物理
生物
医学
作者
Long Pan,Xiaodong Zhu,Xu‐Ming Xie,Yitao Liu
标识
DOI:10.1002/adfm.201404348
摘要
Today, the ever‐increasing demand for large‐size power tools has provoked worldwide competition in developing lithium‐ion batteries having higher energy and power densities. In this context, advanced anode materials are being extensively pursued, among which TiO 2 is particularly promising owing to its high safety, excellent cost and environmental performances, and high cycle stability. However, TiO 2 is faced with two detrimental deficiencies, that is, extremely low theoretical capacity and conductivity. Herein, a smart hybridization strategy is proposed for the hierarchical co‐assembly of TiO 2 nanorods and Fe 3 O 4 nanoparticles on pristine graphene nanosheets, aiming to simultaneously address the capacity and conductivity deficiencies of TiO 2 by coupling it with high‐capacity (Fe 3 O 4 ) and high‐conductivity (pristine graphene) components. The resulting novel, multifunctional ternary heterostructures effectively integrate the intriguing functionalities of the three building blocks: TiO 2 as the major active material can adequately retain such merits as high safety and cycle stability, Fe 3 O 4 as the auxiliary active material can contribute extraordinarily high capacities, and pristine graphene as the conductive dopant can guarantee sufficient percolation pathways. Benefiting from a remarkable synergy, the ternary heterostructures deliver superior reversible capacities and rate capabilities, thus casting new light on developing next‐generation, high‐performance anode materials.
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