ENERGY STORAGE COMPOSITE PARTICLE, BATTERY NEGATIVE ELECTRODE MATERIAL AND BATTERY
    1.
    发明申请
    ENERGY STORAGE COMPOSITE PARTICLE, BATTERY NEGATIVE ELECTRODE MATERIAL AND BATTERY 有权
    能量储存复合颗粒,电池负极电极材料和电池

    公开(公告)号:US20120164531A1

    公开(公告)日:2012-06-28

    申请号:US13228454

    申请日:2011-09-09

    摘要: An energy storage composite particle is provided, which includes a carbon film, a conductive carbon component, an energy storage grain, and a conductive carbon fiber. The carbon film surrounds a space. The conductive carbon component and the energy storage grain are disposed in the space. The conductive carbon fiber is electrically connected to the conductive carbon component, the energy storage grain, and the carbon film, and the conductive carbon fiber extends from the inside of the space to the outside of the space. The energy storage composite particle has a high gravimetric capacity, a high coulomb efficiency, and a long cycle life. Furthermore, a battery negative electrode material and a battery using the energy storage composite particle are also provided.

    摘要翻译: 提供了一种能量储存复合颗粒,其包括碳膜,导电碳组分,储能颗粒和导电碳纤维。 碳膜围绕着一个空间。 导电性碳成分和储能粒子配置在该空间内。 导电性碳纤维与导电性碳成分,能量储存粒子,碳膜电连接,导电性碳纤维从空间的内部向空间的外部延伸。 能量储存复合颗粒具有高重力能力,高库仑效率和较长的循环寿命。 此外,还提供了使用储能复合颗粒的电池负极材料和电池。

    Energy storage composite particle, battery negative electrode material and battery
    2.
    发明授权
    Energy storage composite particle, battery negative electrode material and battery 有权
    储能复合颗粒,电池负极材料和电池

    公开(公告)号:US09040198B2

    公开(公告)日:2015-05-26

    申请号:US13228454

    申请日:2011-09-09

    摘要: An energy storage composite particle is provided, which includes a carbon film, a conductive carbon component, an energy storage grain, and a conductive carbon fiber. The carbon film surrounds a space. The conductive carbon component and the energy storage grain are disposed in the space. The conductive carbon fiber is electrically connected to the conductive carbon component, the energy storage grain, and the carbon film, and the conductive carbon fiber extends from the inside of the space to the outside of the space. The energy storage composite particle has a high gravimetric capacity, a high coulomb efficiency, and a long cycle life. Furthermore, a battery negative electrode material and a battery using the energy storage composite particle are also provided.

    摘要翻译: 提供了一种能量储存复合颗粒,其包括碳膜,导电碳组分,储能颗粒和导电碳纤维。 碳膜围绕着一个空间。 导电性碳成分和储能粒子配置在该空间内。 导电性碳纤维与导电性碳成分,能量储存粒子,碳膜电连接,导电性碳纤维从空间的内部向空间的外部延伸。 能量储存复合颗粒具有高重力能力,高库仑效率和较长的循环寿命。 此外,还提供了使用储能复合颗粒的电池负极材料和电池。

    Nanostructured metal powder and method of fabricating the same
    6.
    发明授权
    Nanostructured metal powder and method of fabricating the same 有权
    纳米结构金属粉末及其制造方法

    公开(公告)号:US07431750B2

    公开(公告)日:2008-10-07

    申请号:US11321615

    申请日:2005-12-28

    IPC分类号: B22F9/14

    摘要: The present invention relates to a nanostructured metal powder and a method of fabricating the same. A twin-wire electric arc process is performed to melt the wire tips, and metal melt is formed. Simultaneously, the metal melt is broken up into melt droplets by an atomizing device. The operating temperature of the electric arc process is controlled between melting point and boiling point of the wire, to avoid vaporization of the melt droplets. Then, a fast cooling is performed to quench the melt droplets. Thus, melt droplets are solidified to μm-scaled, spherical and dense powders comprising nano-grains (d

    摘要翻译: 纳米结构金属粉末及其制造方法技术领域本发明涉及纳米结构金属粉末及其制造方法。 进行双线电弧工艺以熔化线尖,并且形成金属熔体。 同时,通过雾化装置将金属熔体分解成熔体液滴。 电弧工艺的工作温度在熔丝和熔点之间进行控制,以避免熔体液滴的蒸发。 然后,进行快速冷却以淬灭熔体液滴。 因此,熔融液滴固化成包含纳米晶粒(d <100nm)的成瘤鳞片状,球形和致密的粉末。

    Synthesis of composite nanofibers for applications in lithium batteries
    8.
    发明授权
    Synthesis of composite nanofibers for applications in lithium batteries 有权
    用于锂电池的复合纳米纤维的合成

    公开(公告)号:US07323218B2

    公开(公告)日:2008-01-29

    申请号:US10419167

    申请日:2003-04-21

    IPC分类号: B05D7/22 H05H1/24 C23C16/00

    摘要: Methods of fabricating one-dimensional composite nanofiber on a template membrane with porous array by chemical or physical process are disclosed. The whole procedures are established under a base concept of “secondary template”. First of all, tubular first nanofibers are grown up in the pores of the template membrane. Next, by using the hollow first nanofibers as the secondary templates, second nanofibers are produced therein. Finally, the template membrane is removed to obtain composite nanofibers. Showing superior performance in weight energy density, current discharge efficiency and irreversible capacity, the composite nanofibers are applied to extensive scopes like thin-film battery, hydrogen storage, molecular sieving, biosensor and catalyst support in addition to applications in lithium batteries.

    摘要翻译: 公开了通过化学或物理方法在具有多孔阵列的模板膜上制造一维复合纳米纤维的方法。 整个程序在“二级模板”的基本概念下建立。 首先,管状第一纳米纤维在模板膜的孔中长大。 接下来,通过使用中空的第一纳米纤维作为第二模板,在其中制造第二纳米纤维。 最后,除去模板膜,得到复合纳米纤维。 在体重能量密度,电流放电效率和不可逆容量方面表现出优异的性能,除了在锂电池中的应用之外,复合纳米纤维还应用于薄膜电池,储氢,分子筛,生物传感器和催化剂支持等广泛的范围。