Nam Myeong Gyun, Moon Janghyeon, Kim Minjun, Koo Jin Kyo, Ho Jeong-Won, Choi Gwan Hyun, Kim Hye Jin, Shin Chang-Su, Kwon Seok Joon, Kim Young-Jun, Chang Hyuk, Kim Youngugk, Yoo Pil J
School of Chemical Engineering, Sungkyunkwan University (SKKU), Suwon, 16419, Republic of Korea.
SKKU Advanced Institute of Nanotechnology (SAINT), Sungkyunkwan University (SKKU), Suwon, 16419, Republic of Korea.
Adv Mater. 2024 Feb;36(5):e2304803. doi: 10.1002/adma.202304803. Epub 2023 Dec 5.
The binder is an essential component in determining the structural integrity and ionic conductivity of Li-ion battery electrodes. However, conventional binders are not sufficiently conductive and durable to be used with solid-state electrolytes. In this study, a novel system is proposed for a Li secondary battery that combines the electrolyte and binder into a unified structure, which is achieved by employing para-phenylenediamine (pPD) moiety to create supramolecular bridges between the parent binders. Due to a partial crosslinking effect and charge-transferring structure of pPD, the proposed strategy improves both the ionic conductivity and mechanical properties by a factor of 6.4 (achieving a conductivity of 3.73 × 10 S cm for poly(ethylene oxide)-pPD) and 4.4 (reaching a mechanical strength of 151.4 kPa for poly(acrylic acid)-pPD) compared to those of conventional parent binders. As a result, when the supramolecules of pPD are used as a binder in a pouch cell with a lean electrolyte loading of 2 µL mAh , a capacity retention of 80.2% is achieved even after 300 cycles. Furthermore, when it is utilized as a solid-state electrolyte, an average Coulombic efficiency of 99.7% and capacity retention of 98.7% are attained under operations at 50 °C without external pressure or a pre-aging process.
粘结剂是决定锂离子电池电极结构完整性和离子导电性的关键组件。然而,传统粘结剂的导电性和耐久性不足以用于固态电解质。在本研究中,提出了一种用于锂二次电池的新型体系,该体系将电解质和粘结剂结合成一个统一的结构,这是通过使用对苯二胺(pPD)部分在母体粘结剂之间形成超分子桥来实现的。由于pPD的部分交联效应和电荷转移结构,与传统母体粘结剂相比,所提出的策略将离子导电性和机械性能分别提高了6.4倍(聚环氧乙烷-pPD的电导率达到3.73×10 S cm)和4.4倍(聚丙烯酸-pPD的机械强度达到151.4 kPa)。结果,当pPD超分子用作粘结剂应用于电解质负载量为2 µL mAh的软包电池时,即使在300次循环后仍能实现80.2%的容量保持率。此外,当它用作固态电解质时,在50°C下运行且无外部压力或预老化过程的情况下,平均库仑效率达到99.7%,容量保持率达到98.7%。