Yu Jie, Zhang Xupeng, Liu Yuying, Cheng Linqi, Wang Heng-Guo, Cui Fengchao, Zhu Guangshan
Key Laboratory of Polyoxometalate and Reticular Material Chemistry of Ministry of Education Faculty of Chemistry, Northeast Normal University, Changchun, 130024, P.R. China.
Angew Chem Int Ed Engl. 2025 Aug 18;64(34):e202507570. doi: 10.1002/anie.202507570. Epub 2025 Jul 4.
Low-temperature rechargeable batteries are essential for cryogenic energy storage. However, lowering the working temperature will exacerbate the disadvantages of slowed reaction kinetics and mechanical instability of inorganic electrode materials, thus causing severe capacity degradation. In this work, for the first time, we demonstrated that constructing a donor-acceptor (D-A) porous aromatic framework (PAF-310) using p-type phenazine (PZ) and n-type hexaazatrinaphthylene (HATN) as storage blocks can accelerate charge transport and thus facilitate the reaction kinetics even at low-temperature conditions. When employed as the cathode of potassium ion batteries (PIBs), PAF-310 possesses higher electrochemical performance than its counterparts, including impressive discharge specific capacity (215.6 mAh g at 0.2 A g) and outstanding rate performance (77.8 mAh g at 50 A g) at 25 °C. Furthermore, PAF-310 also delivers impressive specific capacities in low-temperature conditions (168.2 mAh g at -20 °C and 130.1 mAh g at -40 °C at 0.2 A g). Even at -70 °C, PAF-310 still exhibits good specific capacity (102.2 mAh g at 50 mA g). Moreover, various in/ex-situ spectral characterizations and theoretical calculations were employed to elucidate the continuous co-storage mechanism of K and PF in PAF-310. This contribution sheds a feasible molecular design strategy towards low-temperature stabilized PIBs.
低温可充电电池对于低温储能至关重要。然而,降低工作温度会加剧无机电极材料反应动力学减慢和机械不稳定性的缺点,从而导致严重的容量衰减。在这项工作中,我们首次证明,使用p型吩嗪(PZ)和n型六氮杂三亚萘(HATN)作为存储模块构建供体-受体(D-A)多孔芳香骨架(PAF-310),即使在低温条件下也能加速电荷传输,从而促进反应动力学。当用作钾离子电池(PIB)的阴极时,PAF-310具有比同类材料更高的电化学性能,包括在25℃时令人印象深刻的放电比容量(0.2 A g时为215.6 mAh g)和出色的倍率性能(50 A g时为77.8 mAh g)。此外,PAF-310在低温条件下也具有令人印象深刻的比容量(-20℃时为168.2 mAh g,-40℃时为0.2 A g时为130.1 mAh g)。即使在-70℃时,PAF-310仍表现出良好的比容量(50 mA g时为102.2 mAh g)。此外,还采用了各种原位/非原位光谱表征和理论计算来阐明PAF-310中K和PF的连续共存储机制。这一贡献为低温稳定的PIB提供了一种可行的分子设计策略。