Suriyakumar Shruti, Santhakumari Indu M, Ghosh Souvik, Gopinathan Anju Vakakuzhiyil, Kunnikuruvan Sooraj, Shaijumon Manikoth M
School of Physics, Indian Institute of Science Education and Research Thiruvananthapuram Vithura Thiruvananthapuram Kerala 695551 India
Center for Advanced Materials Research with International Engagement (CAMRIE), Indian Institute of Science Education and Research Thiruvananthapuram Maruthamala PO, Vithura Kerala 695551 India.
Chem Sci. 2025 Apr 8;16(18):7811-7821. doi: 10.1039/d5sc01107h. eCollection 2025 May 7.
Solid-state batteries present a promising avenue that offers improved safety and energy density, effectively addressing the limitations of state-of-the-art lithium-ion batteries. Among different solid electrolytes, composite polymer electrolytes (CPEs) offer versatile multi-component solutions to distinct challenges posed by inorganic solid and organic polymer electrolytes. However, the polymer-filler interface issues significantly hamper their performance when higher ceramic (>20%) loading occurs. Here, we demonstrate an efficient strategy to introduce an -formed fluorine-rich interface for the lithium anode and the ceramic fillers in the CPE. The rationally designed CPE comprises a high ceramic loading of 40% and exhibits significantly high Li-ionic conductivity (10 S cm @ 55 °C) and compatibility, along with impressive long cycling performance of the Li|Li symmetric cell for over 2000 cycles at 0.1 mA cm. We fabricated all-solid-state Li//LFP full cells that delivered a discharge capacity of 140 mA h g at a 0.1C-rate when cycled at 70 °C and showed good cycling stability. The role of fluorine-containing additives in enhancing conductivity was validated using computations. Furthermore, we extended the applicability of the optimised CPE as an interface modifier in Li//LFP full cells, resulting in improved capacity and long-term cycling.
固态电池提供了一条有前景的途径,能提高安全性和能量密度,有效解决现有锂离子电池的局限性。在不同的固体电解质中,复合聚合物电解质(CPE)为无机固体电解质和有机聚合物电解质带来的不同挑战提供了多种多组分解决方案。然而,当陶瓷负载量较高(>20%)时,聚合物-填料界面问题会严重阻碍其性能。在此,我们展示了一种有效的策略,用于在CPE中为锂阳极和陶瓷填料引入一个形成的富氟界面。合理设计的CPE包含40%的高陶瓷负载量,表现出显著的高锂离子电导率(55°C时为10 S cm)和兼容性,以及Li|Li对称电池在0.1 mA cm下超过2000次循环的令人印象深刻的长循环性能。我们制备了全固态Li//LFP全电池,在70°C下以0.1C倍率循环时,其放电容量为140 mA h g,并且显示出良好的循环稳定性。通过计算验证了含氟添加剂在提高电导率方面的作用。此外,我们将优化后的CPE作为界面改性剂在Li//LFP全电池中的适用性进行了扩展,从而提高了容量和长期循环性能。