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首页> 外文期刊>Journal of electroceramics >Effect of composite electrode thickness on the electrochemical performances of all-solid-state li-ion batteries
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Effect of composite electrode thickness on the electrochemical performances of all-solid-state li-ion batteries

机译:复合电极厚度对全固态锂离子电池电化学性能的影响

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AbstractSeveral ceramic half-cells with differing electrode composite thicknesses but identical formulations were assembled using the spark plasma sintering (SPS) technique, in order to conduct comparable investigations of their kinetic limitations. The SPS technique was used to assemble the composite electrode and the electrolyte together within a few minutes. NASICON-type Li1.5Al0.5Ge1.5(PO4)3(LAGP) ceramic was used as solid electrolyte, as it offers high ionic conductivity (3?×?10?4?S.cm?1at 25?°C) with a Li+transport number of 1. LiFePO4active material was used as a model material; it offers an average flat potential of 3.45?V vs Li+/Li and a reasonably high theoretical capacity of 170 mAh.g?1. Surface capacity values (from 0.8 to 3.5 mAh.cm?2), which are proportional to electrode thickness, remained quite close to the initial values after more than 20?cycles, even for a 325?μm thick electrode (3.5 mAh.cm?2). The overpotential in the flat plateau region was proportional to the current density used, which means that it was dependent only on the cell’s ohmic drop. Performances were not limited by the ion transport into the solid electrolyte and composite electrode volume - as in classical Li-ion batteries - since the transport number of LAGP is one. Therefore, very thick electrode-enabling batteries with high-surface capacity can be considered.]]>
机译:<![CDATA [<标题>抽象 ara ID =“PAR1”>使用电极复合厚度但使用火花等离子体烧结(SPS)技术组装具有相同的配方的几个陶瓷半电池,以便进行他们的动力学限制的可比性调查。 SPS技术用于在几分钟内将复合电极和电解质组装在一起。 NASICON型LI <下标> 1.5 AL <下标> 0.5 GE <下标> 1.5 (PO <下标> 4 )<下标> 3 ( LAGP)陶瓷用作固体电解质,因为它提供高离子电导率(3?×10 <上标>?4 Δs.cm?1 在25°C)一个Li <上标> + 传输号码为1. LifePo <下标> 4 活动材料用作模型材料;它提供3.45的平均扁平电位为3.45?v vs li + / li,以及170 mah.g ?1 的相当高的理论容量。表面容量值(从0.8到3.5 mah.cm <上标>Δ2),其与电极厚度成比例,仍然非常接近20多个循环后的初始值,即使是325?μm厚电极(3.5 mah.cm ?2 )。平坦平台区域的过电位与所用的电流密度成比例,这意味着它仅取决于细胞的欧姆下降。性能不受离子输送到固体电解质和复合电极容积的限制 - 如在经典的锂离子电池中 - 由于滞后的运输数是一种。因此,可以考虑具有高表面容量的非常厚的电极使电池。]]>

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