Abdollahifar Mozaffar, Vinograd Andrey, Lu Chia-Yang, Chang Shu-Jui, Müller Jannes, Frankenstein Lars, Placke Tobias, Kwade Arno, Winter Martin, Chao Chi-Yang, Wu Nae-Lih
Department of Chemical Engineering, National Taiwan University, Taipei 106, Taiwan.
Institute for Particle Technology, Technische Universität Braunschweig, Volkmaroder Str. 5, 38104 Braunschweig, Germany.
ACS Appl Mater Interfaces. 2022 Aug 31;14(34):38824-38834. doi: 10.1021/acsami.2c10175. Epub 2022 Aug 18.
The energy density of lithium-ion batteries (LIBs) can be meaningfully increased by utilizing Si-on-graphite composites (Si@Gr) as anode materials, because of several advantages, including higher specific capacity and low cost. However, long cycling stability is a key challenge for commercializing these composites. In this study, to solve this issue, we have developed a multifunctional polymeric artificial solid-electrolyte interphase (A-SEI) protective layer on carbon-coated Si@Gr anode particles (making Si@Gr/C-SCS) to prolong the cycling stability in LIBs. The coating is made of sulfonated chitosan (SCS) that is crosslinked with glutaraldehyde promoting good ionic conduction together with sufficient mechanical strength of the A-SEI. The focused ion beam-scanning electron microscopy and high-resolution transmission electron microscopy images show that the SCS is uniformly coated on the composite particles with thickness in nanometer. The anodes are investigated in Li metal cells Si@Gr/C-SCS||Li metal) and lithium-ion full-cells (LiNiCoMnO (NCM-622)||Si@Gr/C-SCS) to understand the material/electrode intrinsic degradation as well as the impact of the polymer coating on active lithium losses because of the continuous SEI (re)formation. The anode composites exhibit a high capacity reaching over 600 mAh g, and even without electrolyte optimization, the Si@Gr/C-SCS illustrates a superior long cycle life performance of up to 1000 cycles (over 67% capacity retention). The excellent long-term cycling stability of the anodes was attributed to the SCS polymer coating acting as the A-SEI. The simple polymer coating process is highly interesting in guiding the preparation of long-cycle-life electrode materials of high-energy LIB cells.
通过使用石墨包覆硅复合材料(Si@Gr)作为阳极材料,可以显著提高锂离子电池(LIBs)的能量密度,这得益于其包括更高比容量和低成本在内的若干优势。然而,长循环稳定性是这些复合材料商业化的关键挑战。在本研究中,为了解决这个问题,我们在碳包覆的Si@Gr阳极颗粒上开发了一种多功能聚合物人工固体电解质界面(A-SEI)保护层(制成Si@Gr/C-SCS),以延长LIBs中的循环稳定性。该涂层由与戊二醛交联的磺化壳聚糖(SCS)制成,促进了良好的离子传导以及A-SEI足够的机械强度。聚焦离子束扫描电子显微镜和高分辨率透射电子显微镜图像表明,SCS均匀地包覆在复合颗粒上,厚度为纳米级。在锂金属电池(Si@Gr/C-SCS||锂金属)和锂离子全电池(LiNiCoMnO(NCM-622)||Si@Gr/C-SCS)中对阳极进行了研究,以了解材料/电极的固有降解以及聚合物涂层对由于连续的SEI(再)形成导致的活性锂损失的影响。阳极复合材料表现出超过600 mAh g的高容量,并且即使没有电解质优化,Si@Gr/C-SCS也展示了高达1000次循环的优异长循环寿命性能(容量保持率超过67%)。阳极优异的长期循环稳定性归因于SCS聚合物涂层作为A-SEI的作用。这种简单的聚合物涂层工艺对于指导高能LIB电池长循环寿命电极材料的制备非常有意义。