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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >On the Lithiation Mechanism of Amorphous Silicon Electrodes in Li-Ion Batteries
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On the Lithiation Mechanism of Amorphous Silicon Electrodes in Li-Ion Batteries

机译:在锂离子电池中非晶硅电极的锂化机理

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Amorphous silicon is a high-capacity negative electrode material for use in advanced lithium-ion batteries. We investigated the mechanism of Li incorporation into and removal from this material during electrochemical lithiation and delithiation using a combination of in operando neutron reflectometry and ex situ secondary ion mass spectrometry. The results indicate that a heterogeneous lithiation mechanism is present for the first cycle and also for subsequent cycles during lithiation and delithiation, where a highly lithiated phase penetrates the silicon electrode. During the first lithiation half-cycle, a two-step process takes place, which is not present for delithiation and higher cycles. In the first step, a Li-poor phase penetrates the silicon electrode leading to about 10% of maximum capacity. Afterward, during the second step, a Li-rich phase moves into the electrode leading to complete lithiation in a slower process. The different phases are separated by a relatively sharp interface of only several nanometers. The Li-poor phase extended over the entire electrode is still present after delithiation in the form of irreversibly trapped Li.
机译:非晶硅是一种用于高级锂离子电池的高容量负极材料。我们研究了在电化学锂锂化和脱发过程中Li掺入和除去来自该材料的机制,并使用Operando中子反射仪和ex原位二次离子质谱法的组合。结果表明,第一周期存在异质锂锂化机制,并且还存在于锂化和脱锂期间的后续循环,其中高锂化的相穿透硅电极。在第一锂锂化半周期期间,发生两步过程,其不存在脱锂和更高的循环。在第一步中,锂差相穿透硅电极,导致最大容量的约10%。之后,在第二步期间,富锂的相位进入电极,导致在较慢的过程中完全锂化。不同的相通过几纳米的相对尖锐的界面分离。在不可逆地被捕获的锂的形式之后仍然存在在整个电极上延伸的Li-差相。

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