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首页> 外文期刊>Materials Letters >Surface enhanced Co-Mn double hydroxide coronal architectures for hybrid energy storage
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Surface enhanced Co-Mn double hydroxide coronal architectures for hybrid energy storage

机译:用于混合能储存的表面增强型CO-MN双氢氧化物冠状架构

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摘要

Tailoring of surface-enhanced materials is vital towards achieving enhanced energy storage. In order to achieve this, hybrid material combinations often used in traditional vertically stacked morphologies. However, the inherent nature of poor conductivity and aggregation results in a bottleneck in exploiting such materials' full potential. In particular, the hybrid composites of layered double hydroxide (LDH) architectures suffer from restacking and results in poor charge transport. To mitigate these issues, the rational design of a graphene-based interlinked framework is vital. The interfacial phenomena associated with graphene's charge transport properties are also of considerable interest for manoeuvring graphene-based hybrid material architectures. Herein, we report the synthesis of Co-Mn LDH coronal hybrids with radially aligned LDH lamellae on graphene-based core shells. The synthesis process involves spherical graphene oxide core shells obtained from GO encapsulated SiO2 spheres to prepare hollow coronal LDH hybrids. Without any harsh reagents, self-sacrificial removal of the SiO2 core occurs. The process also helps formulate open porous graphene channels, which help in an efficient charge transfer process. The charge transfer efficiency of LDH becomes superior by incorporating the electrically conductive graphene-based nano core framework. The battery type hybrid material shows an enhanced energy storage capacity of similar to 770 Cg(-1) at a current density of 1 Ag-1. (C) 2021 Elsevier B.V. All rights reserved.
机译:剪裁表面增强材料对于实现增强的储能至关重要。为了实现这一目标,杂种材料组合通常用于传统垂直堆叠的形态。然而,导电性差和聚集的固有性质导致瓶颈利用这种材料的全部潜力。特别地,分层双氢氧化物(LDH)架构的杂化复合材料遭受折断并导致差的电荷运输。为了缓解这些问题,基于石墨烯的交互框架的合理设计至关重要。与石墨烯的电荷传输性能相关的界面现象对操纵基于石墨烯的混合材料架构也具有相当大的兴趣。在此,我们在基于石墨烯的核壳上报道了在基于石墨烯基壳中的径向对齐的LDH薄片的合成。合成过程涉及从去封装的SiO2球体获得的球形石墨烯氧化物壳,以制备中空冠状LDH杂种。没有任何苛刻的试剂,发生自我牺牲的SiO2核心。该过程还有助于配制开放的多孔石墨烯通道,这有助于有效的电荷转移过程。通过结合导电石墨烯的纳米芯框架,LDH的电荷传递效率变得优异。电池型混合动力车材料显示出在电流密度为1Ag-1的770cg(-1)的增强的能量存储容量。 (c)2021 elestvier b.v.保留所有权利。

著录项

  • 来源
    《Materials Letters》 |2021年第1期|129904.1-129904.5|共5页
  • 作者单位

    Indian Inst Technol Ctr Res Nanotechnol & Sci Mumbai 400076 MH India|Indian Inst Technol Dept Met Engn & Mat Sci Nanostruct Engn & Modelling Lab Mumbai 400076 MH India;

    Indian Inst Technol Dept Met Engn & Mat Sci Nanostruct Engn & Modelling Lab Mumbai 400076 MH India;

    Rhein Waal Univ Appl Sci Fac Technol & Bion D-47533 Kleve Germany;

    Indian Inst Technol Dept Met Engn & Mat Sci Nanostruct Engn & Modelling Lab Mumbai 400076 MH India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    2D materials; Coronal architectures; Graphene; Hybrid material; Layered hydroxide;

    机译:2D材料;冠状架构;石墨烯;杂交材料;层状氢氧化物;

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