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基于多功能杂化纳米结构的柔性/可充电锌空气电池。

Flexible/Rechargeable Zn-Air Batteries Based on Multifunctional Heteronanomat Architecture.

机构信息

Department of Energy Engineering, School of Energy and Chemical Engineering , Ulsan National Institute of Science and Technology (UNIST) , Ulsan 44919 , Korea.

KIER-UNIST Advanced Center for Energy, Korea Institute for Energy Research , Ulsan 44919 , Korea.

出版信息

ACS Appl Mater Interfaces. 2018 Jul 5;10(26):22210-22217. doi: 10.1021/acsami.8b05215. Epub 2018 Jun 21.

Abstract

The increasing demand for advanced rechargeable batteries spurs development of new power sources beyond currently most widespread lithium-ion batteries. Here, we demonstrate a new class of flexible/rechargeable zinc (Zn)-air batteries based on multifunctional heteronanomat architecture as a scalable/versatile strategy to address this issue. In contrast to conventional electrodes that are mostly prepared by slurry-casting techniques, heteronanomat (denoted as "HM") framework-supported electrodes are fabricated through one-pot concurrent electrospraying (for electrode powders/single-walled carbon nanotubes (SWCNTs)) and electrospinning (for polyetherimide (PEI) nanofibers) process. Zn powders (in anodes) and rambutan-shaped cobalt oxide (CoO)/multiwalled carbon nanotube (MWCNT) composite powders (in cathodes) are used as electrode active materials for proof of concept. The Zn (or CoO/MWCNT) powders are densely packed and spatially bound by the all-fibrous HM frameworks that consist of PEI nanofibers (for structural stability)/SWCNTs (for electrical conduction) networks, leading to the formation of three-dimensional bicontinuous ion/electron transport channels in the electrodes. The HM electrodes are assembled with cross-linked polyvinyl alcohol/polyvinyl acrylic acid gel polymer electrolytes (acting as zincate ion crossover-suppressing, permselective separator membranes). Benefiting from its unique structure and chemical functionalities, the HM-structured Zn-air cell significantly improves mechanical flexibility and electrochemical rechargeability, which are difficult to achieve with conventional Zn-air battery technologies.

摘要

对先进可充电电池的需求不断增加,促使人们开发出超越目前最广泛使用的锂离子电池的新型电源。在这里,我们展示了一类基于多功能杂化纳米结构的新型柔性/可充电锌(Zn)-空气电池,这是一种可扩展/通用的策略,可以解决这个问题。与大多数通过浆料铸造技术制备的传统电极不同,杂化纳米结构(表示为“HM”)框架支撑的电极是通过一锅式同时静电喷雾(用于电极粉末/单壁碳纳米管(SWCNT))和静电纺丝(用于聚醚酰亚胺(PEI)纳米纤维)工艺制造的。Zn 粉末(在阳极)和红毛丹形状的氧化钴(CoO)/多壁碳纳米管(MWCNT)复合粉末(在阴极)被用作概念验证的电极活性材料。Zn(或 CoO/MWCNT)粉末通过由 PEI 纳米纤维(用于结构稳定性)/SWCNT(用于电传导)网络组成的全纤维 HM 框架密集填充和空间结合,导致在电极中形成三维连续的离子/电子传输通道。HM 电极与交联聚乙烯醇/聚甲基丙烯酸乙烯酯凝胶聚合物电解质(作为锌酸盐离子交叉抑制、选择性分离膜)组装。受益于其独特的结构和化学功能,HM 结构的 Zn-空气电池显著提高了机械柔韧性和电化学可再充电性,这是传统 Zn-空气电池技术难以实现的。

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