Koh Hyeongjun, Detsi Eric, Stach Eric A
Department of Materials Science and Engineering, University of Pennsylvania, 3231 Walnut Street, Philadelphia, PA 19104, USA.
Laboratory for Research on the Structure of Matter, University of Pennsylvania, 3231 Walnut Street, Philadelphia, PA 19104, USA.
Microsc Microanal. 2023 Jul 25;29(4):1350-1356. doi: 10.1093/micmic/ozad074.
It is essential to understand the nanoscale structure and chemistry of energy storage materials due to their profound impact on battery performance. However, it is often challenging to characterize them at high resolution, as they are often fundamentally altered by sample preparation methods. Here, we use the cryogenic lift-out technique in a plasma-focused ion beam (PFIB)/scanning electron microscope (SEM) to prepare air-sensitive lithium metal to understand ion-beam damage during sample preparation. Through the use of cryogenic transmission electron microscopy, we find that lithium was not damaged by ion-beam milling although lithium oxide shells form in the PFIB/SEM chamber, as evidenced by diffraction information from cryogenic lift-out lithium lamellae prepared at two different thicknesses (130 and 225 nm). Cryogenic energy loss spectroscopy further confirms that lithium was oxidized during the process of sample preparation. The Ellingham diagram suggests that lithium can react with trace oxygen gas in the FIB/SEM chamber at cryogenic temperatures, and we show that liquid oxygen does not contribute to the oxidation of lithium process. Our results suggest the importance of understanding how cryogenic lift-out sample preparation has an impact on the high-resolution characterization of reactive battery materials.
由于储能材料的纳米级结构和化学性质对电池性能有深远影响,因此了解它们至关重要。然而,在高分辨率下表征这些材料往往具有挑战性,因为它们常常会因样品制备方法而发生根本性改变。在这里,我们在等离子体聚焦离子束(PFIB)/扫描电子显微镜(SEM)中使用低温剥离技术来制备对空气敏感的锂金属,以了解样品制备过程中的离子束损伤。通过使用低温透射电子显微镜,我们发现锂并未因离子束研磨而受损,尽管在PFIB/SEM腔室中形成了氧化锂壳层,这由在两种不同厚度(130和225纳米)下制备的低温剥离锂薄片的衍射信息所证明。低温能量损失光谱进一步证实锂在样品制备过程中被氧化。埃灵汉姆图表明锂在低温下可与FIB/SEM腔室中的微量氧气反应,并且我们表明液态氧对锂的氧化过程没有贡献。我们的结果表明了解低温剥离样品制备如何影响活性电池材料的高分辨率表征的重要性。