Liu Ming, Wang Chao, Zhao Chenglong, van der Maas Eveline, Lin Kui, Arszelewska Violetta A, Li Baohua, Ganapathy Swapna, Wagemaker Marnix
Section Storage of Electrochemical Energy, Radiation Science and Technology, Faculty of Applied Sciences, Delft University of Technology, Delft, Netherlands.
Key Laboratory on Power Battery Research and Shenzhen Geim Graphene Center, Tsinghua Shenzhen International Graduate School, Tsinghua University, Guangdong, 518055, China.
Nat Commun. 2021 Oct 12;12(1):5943. doi: 10.1038/s41467-021-26190-2.
A key challenge for solid-state-batteries development is to design electrode-electrolyte interfaces that combine (electro)chemical and mechanical stability with facile Li-ion transport. However, while the solid-electrolyte/electrode interfacial area should be maximized to facilitate the transport of high electrical currents on the one hand, on the other hand, this area should be minimized to reduce the parasitic interfacial reactions and promote the overall cell stability. To improve these aspects simultaneously, we report the use of an interfacial inorganic coating and the study of its impact on the local Li-ion transport over the grain boundaries. Via exchange-NMR measurements, we quantify the equilibrium between the various phases present at the interface between an S-based positive electrode and an inorganic solid-electrolyte. We also demonstrate the beneficial effect of the LiI coating on the all-solid-state cell performances, which leads to efficient sulfur activation and prevention of solid-electrolyte decomposition. Finally, we report 200 cycles with a stable capacity of around 600 mAh g at 0.264 mA cm for a full lab-scale cell comprising of LiI-coated LiS-based cathode, Li-In alloy anode and LiPSCl solid electrolyte.
固态电池发展面临的一个关键挑战是设计电极-电解质界面,使其兼具(电)化学稳定性和机械稳定性以及便捷的锂离子传输能力。然而,一方面,为便于高电流传输,应使固体电解质/电极界面面积最大化;另一方面,为减少寄生界面反应并提升电池整体稳定性,该面积又应最小化。为同时改善这些方面,我们报告了一种界面无机涂层的使用及其对晶界处局部锂离子传输影响的研究。通过交换核磁共振测量,我们量化了基于硫的正极与无机固体电解质界面处各相之间的平衡。我们还展示了碘化锂涂层对全固态电池性能的有益影响,这导致了高效的硫活化以及对固体电解质分解的抑制。最后,我们报告了一个全实验室规模的电池在0.264 mA cm下进行200次循环,其容量稳定在约600 mAh g,该电池由涂有碘化锂的硫化锂基阴极、锂-铟合金阳极和LiPSCl固体电解质组成。