首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Carbonization/oxidation-mediated synthesis of MOF-derived hollow nanocages of ZnO/N-doped carbon interwoven by carbon nanotubes for lithium-ion battery anodes
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Carbonization/oxidation-mediated synthesis of MOF-derived hollow nanocages of ZnO/N-doped carbon interwoven by carbon nanotubes for lithium-ion battery anodes

机译:碳化/氧化介导的ZnO / N掺杂碳的MOF衍生中空纳米型通过碳纳米管进行锂离子电池阳极的合成

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摘要

Transition metal oxide (TMO)-based anode materials for Li-ion batteries (LIBs) have generally suffered from limitations of intrinsically severe pulverization upon lithiation and reduced electrical conductivity. To address these issues, an approach of generating hollow nanostructures of TMOs complexed with highly conductive species has been attempted. As a novel means to implement highly electrochemically active TMO-based hollow nanostructures, a pre-synthesized template of a metal organic framework, zeolitic imidazolate framework (ZIF-8), was sequentially treated with partial carbonization and oxidation processes, whereby a hollow, nanocage-like structure of ZnO was obtained while preserving the carbonaceous frame as the electroconductive matrix. Furthermore, through additional incorporation of carbon nanotubes (CNTs), hollow nanocages of ZnO/N-doped carbon were successfully interwoven to form a well-complexed three-dimensional network, imparting enhanced electrical conductivity and mechanical stability to the complexes. When the synthesized ternary nanocomposites of ZnO/N-doped carbon/CNTs were used as anodes of LIBs, enhanced electrochemical performance was achieved, with high specific capacity, excellent rate capability, and greatly extended cycling stability, which could be attributed to the facilitated Li-ion diffusivity and improved electrical conductivity. Therefore, it is highly expected that the proposed strategy could be extended as a general platform for realizing uniquely structured TMO-based electrode materials for high-performance energy storage systems.
机译:基于锂离子电池(LIBS)的转变金属氧化物(TMO)基于锂离子电池(LIB)的阳极材料,通常遭受内部严重粉碎在锂化和降低的电导率下的限制。为了解决这些问题,已经尝试了一种以高导电物种络合的TMOS中空心纳米结构的方法。作为实施高电化学活性TMO的中空纳米结构的新方法,用部分碳化和氧化方法顺序处理金属有机骨架,金属有机骨架,沸石咪唑酯骨架(ZIF-8)的预合成模板,由此中空,纳米记录获得的ZnO的结构,同时保留碳质框架作为导电基质。此外,通过另外的碳纳米管(CNT)掺入碳纳米管(CNT),ZnO / N掺杂碳的中空纳米物成功交织以形成良好的三维网络,赋予复合物的增强的导电性和机械稳定性。当ZnO / N掺杂碳/ CNT的合成三元纳米复合物用作LIB的阳极时,实现了增强的电化学性能,具有高比容量,优异的速率能力和大大延长的循环稳定性,这可能归因于促进的李 - 散射率和改善的电导率。因此,高度预期,所提出的策略可以作为实现用于高性能储能系统的独特结构的基于TMO的电极材料的一般平台。

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