Metal nitride heterostructures capsulated in carbon nanospheres to accommodate lithium metal for constructing a stable composite anode

Baichuan Ding, Xufei An, Jing Yu, Wei Lv, F. Kang, Yanjia He
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引用次数: 1

Abstract

Although various hosts have been proposed to accommodate the Lithium (Li) metal to solve the uneven Li deposition and infinite volume change, the pulverization of the host or lithiophilic modification layer easily leads to structural damage and the poor cycling stability of the composite anode. Herein, we design a host of metal nitrides (Mo2N and WN heterostructures) nanoparticles capsulated in the hollow carbon nanospheres, which can accommodate Li metal to form a stable composite anode. The lithiophilic Mo2N guides uniform infusion and reduces the nucleation barriers of Li metal during electrochemical process. Note that the rigid WN matrix is uniformly composited with Mo2N, which can suppress the pulverization of Mo2N during the repeat Li plating/stripping, ensuring the stability of regulated deposition during long cycling. High mechanical strength, uniform surface potential distribution and good electrolyte wettability of the Li metal-based composite anode guarantee the rapid Li plating/stripping kinetics. Thus, the obtained composite anode can stably cycle 1400 h at 1 mA cm-2 and 1 mA h cm-2 in the symmetric battery. The assembled full cells with LiNi0.8Mn0.1Co0.1O2 (NCM811) also deliver high capacity retention under the high loading (8.6 mg cm-2) or lean electrolyte (2 μL mg-1) condition. This work suggests a promising host structure design to construct a highly stable lithium metal anode for practical applications.
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碳纳米球包裹金属氮化物异质结构以容纳锂金属,以构建稳定的复合阳极
为了解决锂沉积不均匀和体积变化无限的问题,人们提出了多种载体来容纳锂金属,但载体或亲锂改性层的粉碎化容易导致复合阳极的结构破坏和循环稳定性差。在此,我们设计了一系列金属氮化物(Mo2N和WN异质结构)纳米颗粒包裹在空心碳纳米球中,可以容纳Li金属形成稳定的复合阳极。在电化学过程中,亲锂Mo2N引导均匀注入,降低了锂金属的成核障碍。需要注意的是,刚性WN基体与Mo2N均匀复合,可以抑制重复镀锂/剥离过程中Mo2N的粉化,保证长时间循环过程中调控沉积的稳定性。高的机械强度、均匀的表面电位分布和良好的电解质润湿性保证了锂金属基复合阳极的快速镀/剥离动力学。因此,所获得的复合阳极可以在对称电池中以1ma cm-2和1ma h cm-2稳定循环1400 h。在高负载(8.6 mg cm-2)或低电解质(2 μL mg-1)条件下,LiNi0.8Mn0.1Co0.1O2 (NCM811)组装的全电池也具有较高的容量保持率。本工作提出了一种有前途的主体结构设计,用于构建高稳定的锂金属阳极的实际应用。
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