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首页> 外文期刊>Electrochimica Acta >Influence of surface modification on electrochemical performance of high voltage spinel ordered-LiNi0.5Mn1.5O4 exposed to 5.3 V for 100 h before and after surface modification with ALD method
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Influence of surface modification on electrochemical performance of high voltage spinel ordered-LiNi0.5Mn1.5O4 exposed to 5.3 V for 100 h before and after surface modification with ALD method

机译:表面改性对用ALD方法进行表面改性前后5.3 V高压尖晶石型LiNi0.5Mn1.5O4的电化学性能的影响100 h

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摘要

To quantify the effect of high voltage on the electrochemical properties of high-potential spinel ordered-LiNi0.5Mn1.5O4, it was intentionally exposed to 5.3 V for 100 h that can ensure the decomposition of electrolyte. After this treatment, the bulk structure did not change, but electrochemical properties of the sample were severely degraded; polarization became large and capacity loss was substantial. Polarization was caused by formation of a thick insulating passivation layer on the surface of the sample that was measured by impedance spectroscopy. The capacity loss can be partially caused by incomplete phase transformation during discharging as a result of loss of electrical contact due to the presence of the thick passivation layer on the surface of particles. This indicates that the phase transformation depends on the applied current. The other cause for the capacity loss can be from the inactiveness of transition metals in the surface that was measured by XPS. Thick passivation layer on the surface can have inactive transition metals leading to permanent capacity fading. Hence, to control the electrode stability in high voltage spinel LiNi0.5Mn1.5O4, a bare LNMO sample coated with Al2O3 by Atomic Layer Deposition (ALD) were prepared, then exposed to 5.3 V for 100 h. After this surface treatment, the Al2O3-coated sample showed much better electrochemical performance than the bare sample. During the exposure, the bare sample underwent intensive surface reactions with very large generated current density and large charge-transfer resistance. In contrast, the coated sample experienced much weaker surface reactions with low charge-transfer resistance even though the applied potential, 5.3 V was much higher than the stable upper voltage limit (similar to 4.5 V) of conventional electrolyte. The coating effectively protects the surface of the material from surface reactions such as oxidation of the electrolyte; therefore Al2O3-coated LNMO shows reasonable electrochemical properties after exposing at 5.3 V for 100 h. This finding demonstrates that detrimental effects of the exposure at high potential on the electrochemical properties strongly depends on surface characteristics. This understanding can be used to stabilize high-voltage positive electrode materials. (C) 2015 Elsevier Ltd. All rights reserved.
机译:为了量化高压对高电位尖晶石型LiNi0.5Mn1.5O4电化学性能的影响,有意将其暴露在5.3 V电压下100 h以确保电解质的分解。处理后,本体结构没有改变,但样品的电化学性能严重下降;极化变得很大,容量损失很大。极化是通过在样品表面上形成厚的绝缘钝化层(通过阻抗光谱法测量)而引起的。由于在颗粒表面上存在厚的钝化层而导致的电接触损失,在放电期间由于不完全的相变而部分导致容量损失。这表明相变取决于施加的电流。容量损失的另一个原因可能是由XPS测量的表面中过渡金属的惰性所致。表面上的厚钝化层可能具有不活泼的过渡金属,从而导致永久容量衰减。因此,为了控制高压尖晶石LiNi0.5Mn1.5O4中的电极稳定性,制备了通过原子层沉积(ALD)涂覆Al2O3的裸露LNMO样品,然后将其暴露于5.3 V下100 h。经过这种表面处理后,涂有Al2O3的样品比裸露的样品具有更好的电化学性能。在曝光过程中,裸露的样品经历了强烈的表面反应,产生的电流密度非常大,电荷转移电阻也很大。相比之下,即使施加的5.3 V电位比常规电解质的稳定上限电压(类似于4.5 V)高得多,带涂层的样品仍具有较弱的表面反应和较低的电荷转移电阻。该涂层有效地保护了材料的表面免受诸如电解质氧化之类的表面反应的影响。因此,Al2O3涂层的LNMO在5.3 V暴露100 h后显示出合理的电化学性能。该发现表明,高电位下的暴露对电化学性能的有害影响在很大程度上取决于表面特性。这种理解可以用来稳定高压正电极材料。 (C)2015 Elsevier Ltd.保留所有权利。

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