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首页> 外文期刊>Applied Surface Science >High-rate and ultralong cycle-life LiFePO4 nanocrystals coated by boron-doped carbon as positive electrode for lithium-ion batteries
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High-rate and ultralong cycle-life LiFePO4 nanocrystals coated by boron-doped carbon as positive electrode for lithium-ion batteries

机译:掺硼碳包覆锂离子电池正极的高倍率和超长循环寿命LiFePO4纳米晶体

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摘要

An evolutionary modification approach, boron-doped carbon coating, has been used to improve the electrochemical performances of positive electrodes for lithium-ion batteries, and demonstrates apparent and significant modification effects. In this study, the boron-doped carbon coating is firstly adopted and used to decorate the performance of LiFePO4. The obtained composite exhibits a unique core-shell structure with an average diameter of 140 nm and a 4 nm thick boron-doped carbon shell that uniformly encapsulates the core. Owing to the boron element which could induce high amount of defects in the carbon, the electronic conductivity of LiFePO4 is greatly ameliorated. Thus, the boron-doped composite shows superior rate capability and cycle stability than the undoped sample. For instance, the reversible specific capacity of LiFePO4@B-0.4-C can reach 164.1 mAh g(-1) at 0.1C, which is approximately 96.5% of the theoretical capacity (170 mAh g(-1)). Even at high rate of 10C, it still shows a high specific capacity of 126.8 mAh g(-1) and can be maintained at 124.5 mAh g(-1) after 100 cycles with capacity retention ratio of about 98.2%. This outstanding Li-storage property enable the present design strategy to open up the possibility of fabricating the LiFePO4@B-C composite for high-performance lithium-ion batteries. (C) 2016 Elsevier B.V. All rights reserved.
机译:进化改性方法,硼掺杂碳涂层,已被用于改善锂离子电池正极的电化学性能,并显示出明显和显着的改性效果。在这项研究中,首先采用了掺硼碳涂层来装饰LiFePO4的性能。所获得的复合材料表现出独特的核-壳结构,其平均直径为140 nm,并且具有4 nm厚的硼掺杂碳壳,均匀地包裹了核。由于硼元素会在碳中引起大量缺陷,因此大大改善了LiFePO4的电子导电性。因此,掺硼复合材料比未掺杂样品显示出更高的速率能力和循环稳定性。例如,LiFePO4 @ B-0.4-C的可逆比容量在0.1C时可以达到164.1 mAh g(-1),大约是理论容量(170 mAh g(-1))的96.5%。即使在10C的高速率下,它仍显示出126.8 mAh g(-1)的高比容量,并且在100次循环后可以保持在124.5 mAh g(-1),容量保持率约为98.2%。这种出色的锂存储特性使当前的设计策略为制造高性能锂离子电池LiFePO4 @ B-C复合材料提供了可能性。 (C)2016 Elsevier B.V.保留所有权利。

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