Sun Na, Lu Fei, Yu Yang, Su Long, Gao Xinpei, Zheng Liqiang
Key Laboratory of Colloid and Interface Chemistry, Ministry of Education, Shandong University, 250100 Jinan, P. R. China.
College of Chemistry, Chemical Engineering and Materials Science, Key Laboratory of Molecular and Nano Probes, Ministry of Education, Collaborative Innovation Center of Functionalized Probes for Chemical Imaging in Universities of Shandong, Institute of Molecular and Nano Science, Shandong Normal University, 250014 Jinan, P. R. China.
ACS Appl Mater Interfaces. 2020 Mar 11;12(10):11778-11788. doi: 10.1021/acsami.0c00325. Epub 2020 Feb 28.
For the development of advanced flexible and wearable electronic devices, functional electrolytes with excellent conductivity, temperature tolerance, and desirable mechanical properties need to be engineered. Herein, an alkaline double-network hydrogel with high conductivity and superior mechanical and antifreezing properties is designed and promisingly utilized as the flexible electrolyte in all-solid-state zinc-air batteries. The conductive hydrogel is comprised of covalently cross-linked polyelectrolyte poly(2-acrylamido-2-methylpropanesulfonic acid potassium salt) (PAMPS-K) and interpenetrating methyl cellulose (MC) in the presence of concentrated alkaline solutions. The covalently cross-linked PAMPS-K skeleton and interpenetrating MC chains endow the hydrogel with good mechanical strength, toughness, an extremely rapid self-recovery capability, and an outstanding antifatigue property. Gratifyingly, the entrapment of a concentrated alkaline solution in the hydrogel matrix yields an extremely high ionic conductivity (105 mS cm at 25 °C) and an excellent antifreezing capacity. The hydrogel retains comparable conductivity and eligible strength to withstand various mechanical deformations at -20 °C. The all-solid-state zinc-air batteries using PAMPS-K/MC hydrogels as flexible alkaline electrolytes exhibit comparable values of specific capacity (764.7 mAh g), energy capacity (850.2 mWh g), cycling stability, and mechanical flexibility. The batteries still possess competitive electrochemical performances even when the operating temperature drops to -20 °C.
为了开发先进的柔性可穿戴电子设备,需要设计具有优异导电性、耐温性和理想机械性能的功能性电解质。在此,设计了一种具有高导电性、优异机械性能和抗冻性能的碱性双网络水凝胶,并有望将其用作全固态锌空气电池中的柔性电解质。导电水凝胶由共价交联的聚电解质聚(2-丙烯酰胺-2-甲基丙磺酸钾盐)(PAMPS-K)和在浓碱性溶液存在下互穿的甲基纤维素(MC)组成。共价交联的PAMPS-K骨架和互穿的MC链赋予水凝胶良好的机械强度、韧性、极快的自我恢复能力和出色的抗疲劳性能。令人欣慰的是,水凝胶基质中浓碱性溶液的截留产生了极高的离子电导率(25℃时为105 mS cm)和出色的抗冻能力。该水凝胶在-20℃时仍保持相当的电导率和合格的强度,以承受各种机械变形。使用PAMPS-K/MC水凝胶作为柔性碱性电解质的全固态锌空气电池表现出可比的比容量(764.7 mAh g)、能量容量(850.2 mWh g)、循环稳定性和机械柔韧性。即使工作温度降至-20℃,电池仍具有有竞争力的电化学性能。