Qiu Meijia, Liang Yuxuan, Hong Jiahong, Li Jiale, Sun Peng, Mai Wenjie
Siyuan Laboratory, Guangzhou Key Laboratory of Vacuum Coating Technologies and New Energy Materials, Guangdong Provincial Engineering Technology Research Center of Vacuum Coating Technologies and New Energy Materials, Guangdong Provincial Key Laboratory of Nanophotonic Manipulation, Department of Physics, College of Physics & Optoelectronic Engineering, Jinan University, Guangdong, 510632, People's Republic of China.
Angew Chem Int Ed Engl. 2024 Sep 16;63(38):e202407012. doi: 10.1002/anie.202407012. Epub 2024 Aug 13.
Batteries always encounter uncontrollable failure or performance decay under extreme temperature environments, which is largely limited by the properties of electrolytes. Herein, an entropy-driven hydrated eutectic electrolyte (HEE) with diverse solvation configurations is proposed to expand the operating temperature range of Zn-ion batteries. The HEE possesses over 40 types of Zn solvation structure with uniform distribution, contributing to its much higher solvation configurational entropy compared to the conventional aqueous counterpart (only 6 types). These effectively promote its anti-freezing ability under ultralow temperatures, with a high ionic conductivity of 0.42 mS cm even at a low temperature of -40 °C. Moreover, the entropy-driven property can simultaneously enhance the thermal stability under a high temperature over +140 °C. Therefore, the HEE can enable full cells stably working over a wide temperature range of -40~+80 °C, performing over 1500 cycles with 100 % capacity retention at -40 °C and 1000 cycles with ~72 % capacity retention at +80 °C. This inspiring concept of entropy-driven electrolyte with quantized solvation configurational entropy value has charming potential for designing future special batteries with excellent adaptability towards extreme temperature environments.
在极端温度环境下,电池总会遭遇无法控制的失效或性能衰退,这在很大程度上受限于电解质的性质。在此,我们提出一种具有多种溶剂化构型的熵驱动水合共晶电解质(HEE),以拓宽锌离子电池的工作温度范围。该HEE拥有40多种分布均匀的锌溶剂化结构,相较于传统水系电解质(仅有6种),其溶剂化构型熵要高得多。这些结构有效地提升了其在超低温下的抗冻能力,即使在-40°C的低温下,离子电导率仍高达0.42 mS cm。此外,熵驱动特性还能同时增强在+140°C以上高温下的热稳定性。因此,这种HEE能使全电池在-40~+80°C的宽温度范围内稳定工作,在-40°C下可进行超过1500次循环且容量保持率为100%,在+80°C下可进行1000次循环且容量保持率约为72%。这种具有量化溶剂化构型熵值的熵驱动电解质的创新概念,在设计未来对极端温度环境具有优异适应性的特殊电池方面具有诱人的潜力。