Park Tae Wan, Kang Young Lim, Lee Sang Hyeon, No Gu Won, Park Eun-Soo, Park Chan, Lee Junghoon, Park Woon Ik
Electronic Convergence Materials Division, Korea Institute of Ceramic Engineering & Technology (KICET), Jinju 52851, Korea.
Department of Materials Science and Engineering, Pukyong National University (PKNU), Busan 48513, Korea.
Materials (Basel). 2021 Mar 24;14(7):1585. doi: 10.3390/ma14071585.
Various high-performance anode and cathode materials, such as lithium carbonate, lithium titanate, cobalt oxides, silicon, graphite, germanium, and tin, have been widely investigated in an effort to enhance the energy density storage properties of lithium-ion batteries (LIBs). However, the structural manipulation of anode materials to improve the battery performance remains a challenging issue. In LIBs, optimization of the anode material is a key technology affecting not only the power density but also the lifetime of the device. Here, we introduce a novel method by which to obtain nanostructures for LIB anode application on various surfaces via nanotransfer printing (nTP) process. We used a spark plasma sintering (SPS) process to fabricate a sputter target made of LiCO, which is used as an anode material for LIBs. Using the nTP process, various LiCO nanoscale patterns, such as line, wave, and dot patterns on a SiO/Si substrate, were successfully obtained. Furthermore, we show highly ordered LiCO nanostructures on a variety of substrates, such as Al, AlO, flexible PET, and 2-Hydroxylethyl Methacrylate (HEMA) contact lens substrates. It is expected that the approach demonstrated here can provide new pathway to generate many other designable structures of various LIB anode materials.
为了提高锂离子电池(LIBs)的能量密度存储性能,人们对各种高性能的阳极和阴极材料进行了广泛研究,如碳酸锂、钛酸锂、钴氧化物、硅、石墨、锗和锡等。然而,通过对阳极材料进行结构调控来改善电池性能仍然是一个具有挑战性的问题。在锂离子电池中,阳极材料的优化是一项关键技术,它不仅影响电池的功率密度,还影响电池的使用寿命。在此,我们介绍一种新颖的方法,通过纳米转移印刷(nTP)工艺在各种表面上制备用于LIB阳极的纳米结构。我们使用火花等离子体烧结(SPS)工艺制备了由LiCO制成的溅射靶材,该靶材用作LIBs的阳极材料。通过nTP工艺,成功在SiO/Si衬底上获得了各种LiCO纳米级图案,如线条、波浪和点状图案。此外,我们还展示了在各种衬底上高度有序的LiCO纳米结构,如Al、AlO、柔性PET和甲基丙烯酸-2-羟乙酯(HEMA)隐形眼镜衬底。预计本文所展示的方法能够为生成各种LIB阳极材料的许多其他可设计结构提供新途径。