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首页> 外文期刊>Advanced Science >CNT‐Assembled Octahedron Carbon‐Encapsulated Cu3P/Cu Heterostructure by In Situ MOF‐Derived Engineering for Superior Lithium Storage: Investigations by Experimental Implementation and First‐Principles Calculation
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CNT‐Assembled Octahedron Carbon‐Encapsulated Cu3P/Cu Heterostructure by In Situ MOF‐Derived Engineering for Superior Lithium Storage: Investigations by Experimental Implementation and First‐Principles Calculation

机译:CNT组装的八面体碳包封的Cu3P / Cu异质结构通过原位制造的工程来实现优质锂储存:通过实验实施和第一原理计算研究

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摘要

Conspicuously, metal–organic frameworks (MOFs) serve as homogenously and periodically atom‐dispersed self‐sacrificial template for in situ engineering of hierarchical porous carbon‐encapsulated micro/nanoheterostructure materials, integrating the merits of micro/nanostructure to high‐volumetric energy storage. Copper phosphide represents a promising candidate due to its compact material density compared to commercial graphite. Herein, micro/nanostructured Cu3P/Cu encapsulated by carbon‐nanotube‐assembled hierarchical octahedral carbonaceous matrix (Cu3P/Cu@CNHO) is constructed by an in situ MOF‐derived engineering for novel anode material in LIBs, which achieves an extraordinary cycling stability (a well‐maintained gravimetric/volumetric capacity of 463.2 mAh g?1/1878.4 mAh cm?3 at 1 A g?1 up to 1600 cycles) and distinguished rate capability (an ameliorated capacity of 317.7 mAh g?1 even at 10 A g?1), together with unprecedented heat‐resistant capability (an elevated temperature of 50 °C for 1000 cycles maintaining 434.7 mAh g?1 at 0.5 A g?1). The superior electrochemical performance of Cu3P/Cu@CNHO is credited to the large specific surface area, conductive carbon matrix and metallic copper dopants, synergistic effects of the intrinsic Cu3P/Cu heterostructure, and well‐defined micro/nanostructure, facilitating a boosted electrochemical conductivity and accelerated diffusion kinetics.
机译:显着地,金属有机框架(MOF)用作均匀和定期原子分散的自我牺牲的自我牺牲模板,用于原位工程的分层多孔碳包封的微/纳米能结构材料,将微/纳米结构的优点集成到高容量储存。与商业石墨相比,磷化铜代表其具有紧凑型材料密度的承诺候选。本文中,通过碳 - 纳米管组装的分层碳质碳质基质(Cu3P / Cu / CNHO)包封的微/纳米结构Cu3p / Cu由Bibs中的新型阳极材料的原位制造工程构成,这实现了非凡的循环稳定性(一种保持良好的重量/体积容量为463.2mah g?1 / 1878.4 mah cm 2以1 a g?1至1600次循环)和可分辨率能力(改善容量为317.7mahg≤1即使在10 a g) ?1),与前所未有的耐热能力(高温为50℃,1000个循环保持434.7mahg≤1)。 Cu3P / Cu / Cu / Cnho的卓越电化学性能被归功于大的比表面积,导电碳基质和金属铜掺杂剂,本征Cu3p / Cu异质结构的协同作用,以及明确明确的微/纳米结构,便于提升电化学电导率并加速扩散动力学。

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