A'/> <![CDATA[Sol-gel synthesis and electrochemical properties extracted by phase inflection detection method of NASICON-type solid electrolytes LiZr<ce:inf loc='post'>2</ce:inf>(PO<ce:inf loc='post'>4</ce:inf>)<ce:inf loc='post'>3</ce:inf> and Li<ce:inf loc='post'>1.2</ce:inf>Zr<ce:inf loc='post'>1.9</ce:inf>Ca<ce:inf loc='post'>0.1</ce:inf>(PO<ce:inf loc='post'>4</ce:inf>)<ce:inf loc='post'>3</ce:inf>]]>
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2(PO4)3 and Li1.2Zr1.9Ca0.1(PO4)3]]>

机译:<![CDATA [CDATA [溶胶 - 凝胶合成及电化学性能通过鼻型固体电解质电解质Lizr 2 (PO 4 3 和LI 1.2 ZR < CE:INF PLACE =“POST”> 1.9 CA 0.1 (PO 4 3 ]]>

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Abstract The use of good ionic conductors is a key point in various battery technologies such as Li-air Lithium-Sulfur (Li-S) and All-Solid-State batteries. The determination of the conduction properties as well as the structure in function of temperature and their electrochemical stability are paramount. At the same time, the manufacturing process of these solid electrolytes must be simplified in order to foster the emergence of these technologies. In this context, NASICON-type solid electrolytes LiZr2(PO4)3 (LZP) and Li1.2Zr1.9Ca0.1(PO4)3 (LCZP) were synthetized by a new sol-gel method to simplify the synthesis process compared to the solid-state reaction and to reduce the synthesis temperature from 1200°C to 1100°C. The influence of Ca-doping on crystal structure and transport properties was studied in function of temperature and for the first time the electrochemical stability determined. A method, the Phase Inflection Detection (PID), was developed to better determine the transport properties extracted from Electrochemical Impedance Spectroscopy. The ionic conductivity of LCZP is greater than that of LZP by about 2 decades at room temperature due to the stabilization of the high temperature phase at room temperature by Ca-doping, an increase in the number of lithium mobile ions and a better compactness compared with LZP. The impact of sintering temperature and grain boundaries on transport properties is clearly demonstrated and must be taken into account in the future studies of solid electrolytes. The LCZP material is not stable below 0.6V vs. Li+/Li. It thus presents one of the best electrochemical stabilities, making it a potential candidate for various battery technologies. Highlights ? Sol-gel method is proposed for the synthesis of solid electrolyte. ? The EIS treatment of phase signal allows the determination of electrolyte resistance. ? The electrochemical stability of solid electrolyte is a key parameter. ? The influence of grain size must be considered during process of ceramic membrane. ]]>
机译:<![cdata [ 抽象 使用良好的离子导体是各种电池技术的关键点,如Li-Air锂 - 硫磺( LI-S)和全固态电池。测定导通性能以及温度函数的结构及其电化学稳定性是至关重要的。同时,必须简化这些固体电解质的制造过程,以促进这些技术的出现。在这种情况下,Nasicon型固体电解质Lizr 2 (PO 4 3 (LZP)和LI 1.2 ZR 1.9 CA 0.1 (PO 4 (LCZP),并将合成温度从1200 °C至1100 °C。在温度的功能中研究了Ca-掺杂对晶体结构和运输性能的影响,并且首次测定了电化学稳定性。开发了一种方法,相拐点检测(PID)以更好地确定从电化学阻抗光谱中提取的传输性能。 LCZP的离子电导率大于LZP在室温下大约2岁的大约2岁,由于CA-EPING在室温下稳定高温相,增加了锂移动离子的数量和更好的紧凑性LZP。清楚地证明了烧结温度和晶粒边界对运输性能的影响,并且必须考虑到固体电解质的未来研究。 LCZP材料不稳定0.6 V与Li + / li。因此,它提出了一种最佳的电化学稳定性之一,使其成为各种电池技术的潜在候选者。 亮点 < CE:简单段ID =“SP0060”View =“全部”> 提出了用于合成固体电解质的溶胶 - 凝胶方法。 相位信号的EIS处理允许测定电解质电阻。 电化学稳定性坚实的Ele. CTrolyte是一个关键参数。 在陶瓷膜的过程中必须考虑晶粒尺寸的影响。 ]]>

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