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首页> 外文期刊>CERAMICS INTERNATIONAL >NiSe2 encapsulated in N-doped TiN/carbon nanoparticles intertwined with CNTs for enhanced Na-ion storage by pseudocapacitance nbsp;
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NiSe2 encapsulated in N-doped TiN/carbon nanoparticles intertwined with CNTs for enhanced Na-ion storage by pseudocapacitance nbsp;

机译:NiSe2封装在N掺杂的TiN/碳纳米颗粒中,与CNTs交织在一起,通过赝电容增强Na离子存储。

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Transitional metal selenides are considered as potential anode candidates for sodium-ion batteries (SIBs) because of their relatively high theoretical capacity and environmental benign. However, the large volume change derived from the conversion reaction and the sluggish kinetics due to the inherent low electrochemical conductivity hinder their practical application. Herein, composite materials of NiSe2 encapsulated in nitrogen-doped TiN/carbon nanoparticles with carbon nanotubes (CNTs) on the surface (NiSe2@N-TCP/CNTs) are fabricated via pyrolysis and selenization processes. In this composite, TiN inside the carbon matrix can enhance the conductivity and structural stability. CNTs that are in-situ grown on the surface not only further enhance the conductivity of the composites, but also offer sufficient space to buffer the volume expansion and alleviate serious aggregation of NiSe2 nanoparticles. Benefit from these merits, the NiSe2@N-TCP/CNTs showed a lower charge transfer resistance and a faster Na+ diffusion rate than materials without growing CNTs. When used as the anode of SIBs, the NiSe2@N-TCP/CNTs electrode delivered a reversible capacity of 344.0 mAh g(-1) after 1000 cycles at 0.2 A g(-1), and still maintained at 272.7 mAh g(-1) even at a high current density of 2 A g(-1). The remarkable electrochemical performance is mainly attributed to the special designed hierarchical structures and pseudo capacitance sodium storage behavior.
机译:过渡金属硒化物被认为是钠离子电池 (SIB) 的潜在阳极候选者,因为它们具有相对较高的理论容量和对环境无害的特点。然而,转化反应产生的体积变化大,以及由于固有的低电化学电导率而产生的动力学迟缓,阻碍了其实际应用。本文通过热解和硒化工艺制备了封装在氮掺杂TiN/碳纳米颗粒中、表面有碳纳米管(CNTs)的NiSe2复合材料(NiSe2@N-TCP/CNTs)。在这种复合材料中,碳基体内的TiN可以增强其导电性和结构稳定性。在表面原位生长的碳纳米管不仅进一步增强了复合材料的导电性,而且还提供了足够的空间来缓冲体积膨胀并减轻NiSe2纳米颗粒的严重聚集。得益于这些优点,NiSe2@N-TCP/CNTs显示出比没有生长CNTs的材料更低的电荷转移电阻和更快的Na+扩散速率。当用作SIBs的阳极时,NiSe2@N-TCP/CNTs电极在0.2 A g(-1)下循环1000次后仍能提供344.0 mAh g(-1)的可逆容量,即使在2 A g(-1)的高电流密度下仍保持在272.7 mAh g(-1)。显著的电化学性能主要归功于特殊设计的分层结构和赝电容钠储存行为。

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