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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >A chemically stable PVD multilayer encapsulation for lithium microbatteries
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A chemically stable PVD multilayer encapsulation for lithium microbatteries

机译:用于锂微电池的化学稳定的PVD多层封装

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A multilayer physical vapour deposition (PVD) thin-film encapsulation method for lithium microbatteries is presented. Lithium microbatteries with a lithium cobalt oxide (LiCoO2) cathode, a lithium phosphorous oxynitride (LiPON) electrolyte and a metallic lithium anode are under development, using PVD deposition techniques. Metallic lithium film is still the most common anode on this battery technology; however, it presents a huge challenge in terms of material encapsulation (lithium reacts with almost any materials deposited on top and almost instantly begins oxidizing in contact with atmosphere). To prove the encapsulation concept and perform all the experiments, lithium films were deposited by thermal evaporation technique on top of a glass substrate, with previously patterned Al/Ti contacts. Three distinct materials, in a multilayer combination, were tested to prevent lithium from reacting with protection materials and atmosphere. These multilayer films were deposited by RF sputtering and were composed of lithium phosphorous oxide (LiPO), LiPON and silicon nitride (Si3N4). To complete the long-term encapsulation after breaking the vacuum, an epoxy was applied on top of the PVD multilayer. In order to evaluate oxidation state of lithium films, the lithium resistance was measured in a four probe setup (cancelling wires/contact resistances) and resistivity calculated, considering physical dimensions. A lithium resistivity of 0.16 Omega mu m was maintained for more than a week. This PVD multilayer exonerates the use of chemical vapour deposition (CVD), glove-box chambers and sample manipulation between them, significantly reducing the fabrication cost, since battery and its encapsulation are fabricated in the same PVD chamber.
机译:提出了一种用于锂微电池的多层物理气相沉积(PVD)薄膜封装方法。使用PVD沉积技术的锂微电池正处于开发中,该锂微电池具有钴酸锂(LiCoO2)阴极,氮氧化锂磷(LiPON)电解质和金属锂阳极。金属锂膜仍然是该电池技术中最常见的阳极。然而,它在材料封装方面提出了巨大的挑战(锂几乎与沉积在顶部的任何材料发生反应,并在与大气接触时几乎立即开始氧化)。为了证明封装概念并执行所有实验,通过热蒸发技术将锂膜沉积在具有预先构图的Al / Ti触点的玻璃基板顶部。测试了三种不同材料的多层组合,以防止锂与保护材料和气氛发生反应。这些多层膜通过RF溅射沉积,由氧化亚磷锂(LiPO),LiPON和氮化硅(Si3N4)组成。为了在打破真空后完成长期封装,在PVD多层的顶部上涂了环氧树脂。为了评估锂膜的氧化态,在四个探针设置(取消导线/接触电阻)中测量了锂电阻,并考虑了物理尺寸,计算了电阻率。锂电阻率保持在0.16Ω/μm以上。由于电池及其封装是在同一个PVD室中制造的,因此该PVD多层无需使用化学气相沉积(CVD),手套箱室以及它们之间的样品处理,从而大大降低了制造成本。

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