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(Invited) Advancement of Low Temperature Ceramic Synthesis for Solid State Battery Components and Cells - a Personal Love Story

机译:(邀请)固态电池组件和细胞的低温陶瓷合成的进步 - 个人爱情故事

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Next generation of energy storage devices may largely benefit from fast and solid Li~+ ceramic electrolyte conductors to allow for safe and efficient batteries and fast data calculation. For those applications, the ability of Li-oxides to be processed as thin film structures and with high control over Lithiation and phases at low temperature is of essence to control conductivity. Through this presentation we review the field from a new angle, not only focused on the classics such as Li-ionic transport and electrochemical stability window for Li-solid state battery electrolytes, but focusing on opportunities and challenges routes in thermal and ceramic processing of the components and their assemblies with electrodes. Also, we will carefully review and give perspectives on the role of solid state battery ceramic strategies for the electrolyte on the electrode interfaces and towards charge transfer and vs. current densities. In other words, it will be a little ceramicist (own) love story on the good and the evil we can design by smart ceramic design at the interfaces originating by the very first choices made in the electrolyte ceramic structure and material design. In the second part of the talk we will discuss new opportunities on low temperature processing of solid state electrolyte ceramics that do not technically require "classic sintering" and avoid prior particle calcination; instead demonstrating opportunities to use liquid based direct densification routes and vacuum techniques to design solid electrolytes and grafting interfaces to new hybrid and solid state battery prototypes targeted at processing below 700C for all parts. Collectively, the insights on solid state energy storage provide evidence for the functionalities that those Li-solid state material designs can have for cost and mass manufacturable solid state and hybrid battery prototypes.
机译:下一代能量存储装置可能大大受益于快速和固体Li +陶瓷电解质导体,以允许安全有效的电池和快速数据计算。对于那些应用,锂氧化物被加工为薄膜结构的能力,并且在低温下对锂锂化和相的控制具有精确的控制电导率。通过本演示文稿,我们从新角度审查了该领域,不仅专注于锂离子运输和锂固态电池电解质的电化学稳定窗口等经典,而且专注于热和陶瓷加工中的机会和挑战路线具有电极的组件及其组件。此外,我们将仔细审查并透视电极界面上的电解质的实体电池陶瓷策略的作用以及朝向电荷转移的角色。换句话说,它将是一点陶瓷家(自己的)爱情故事,我们可以通过智能陶瓷设计在源自电解质陶瓷结构和材料设计中制造的界面上的智能陶瓷设计来设计。在谈话的第二部分,我们将讨论在低温加工的新机遇,在技术上不需要“经典烧结”并避免先前的颗粒煅烧;相反,展示了使用基于液体的直接致密化路线和真空技术来设计固体电解质和嫁接接口的机会,以在所有部件下处理70℃以下的新的混合和固态电池原型。集体,对固态能量存储的见解为那些Li-固态材料设计提供了成本和质量可制造的固态和混合电池原型的功能提供了证据。

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