Ziliang Li , Li Gao , Xuemei Wu , Xiaobin Jiang , Xiangcun Li , Wu Xiao , Wanting Chen , Wenji Zheng , Xuehua Ruan , Xiaoming Yan , Gaohong He
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The rigid and non-rotatable aromatic structure can facilitate the formation of a well-defined microphase separation structure with long chain quaternary ammonium by reducing chain segment interactions, and can also ameliorate the dimensional stability of the membrane. Consequently, the as-prepared membrane exhibits an excellent hydroxide conductivity of 130 mS cm<sup>−1</sup> at 80 °C and approaches a terrific conductivity retention rate of 90 % after immersion in 1 M NaOH solution at 80 °C for 1000 h. Furthermore, the as-prepared membrane achieves an excellent peak power density of 1.36 W cm<sup>−2</sup> in the H<sub>2</sub>-O<sub>2</sub> fuel cell and its initial voltage shows no signs of decreasing after running for 20 h under 0.2 A cm<sup>−2</sup>.</div></div>","PeriodicalId":377,"journal":{"name":"Journal of Power Sources","volume":"628 ","pages":"Article 235911"},"PeriodicalIF":8.1000,"publicationDate":"2024-11-23","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Development of boosted microphase separation exploiting highly rigid poly(phenyl-alkane)s anion exchange membranes for excellent performance fuel cells\",\"authors\":\"Ziliang Li , Li Gao , Xuemei Wu , Xiaobin Jiang , Xiangcun Li , Wu Xiao , Wanting Chen , Wenji Zheng , Xuehua Ruan , Xiaoming Yan , Gaohong He\",\"doi\":\"10.1016/j.jpowsour.2024.235911\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><div>The advancement of the ionic conductivity and dimensional stability of anion exchange membranes (AEMs) while ensuring excellent alkali stability is the critical challenge in the development of AEM fuel cells. 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引用次数: 0
摘要
提高阴离子交换膜(AEM)的离子传导性和尺寸稳定性,同时确保出色的碱稳定性,是开发 AEM 燃料电池的关键挑战。通过精心设计的微相形态构建高效离子传输通道被认为是实现这一目标的有效策略。在此,我们提出了一种巧妙的设计,即以刚性芳基单元(即 1,4-二甲氧基苯和螺比茚)为主链,连接柔性烷基链的新型无芳基醚聚(苯基-烷基)AEMs,以优化 AEMs 的导电性和寿命。刚性和不可旋转的芳香族结构可通过减少链段间的相互作用,促进与长链季铵形成明确的微相分离结构,还可改善膜的尺寸稳定性。因此,所制备的膜在 80 °C 下具有 130 mS cm-1 的优异氢氧化物电导率,在 80 °C 下的 1 M NaOH 溶液中浸泡 1000 小时后,电导率保持率可达 90%。此外,所制备的膜在 H2-O2 燃料电池中实现了 1.36 W cm-2 的优异峰值功率密度,在 0.2 A cm-2 下运行 20 小时后,其初始电压没有下降迹象。
Development of boosted microphase separation exploiting highly rigid poly(phenyl-alkane)s anion exchange membranes for excellent performance fuel cells
The advancement of the ionic conductivity and dimensional stability of anion exchange membranes (AEMs) while ensuring excellent alkali stability is the critical challenge in the development of AEM fuel cells. Construction of efficient ion transport channels through well-designed microphase morphology is considered to be an effective strategy to achieve this goal. Herein, we propose an ingenious design that a novel aryl ether-free poly(phenyl-alkane)s-based AEMs to optimize the conductivity and longevity of AEMs using rigid aryl units, i.e., 1,4-dimethoxybenzene and spirobisindane, as the main chains with connecting flexible alkyl chains. The rigid and non-rotatable aromatic structure can facilitate the formation of a well-defined microphase separation structure with long chain quaternary ammonium by reducing chain segment interactions, and can also ameliorate the dimensional stability of the membrane. Consequently, the as-prepared membrane exhibits an excellent hydroxide conductivity of 130 mS cm−1 at 80 °C and approaches a terrific conductivity retention rate of 90 % after immersion in 1 M NaOH solution at 80 °C for 1000 h. Furthermore, the as-prepared membrane achieves an excellent peak power density of 1.36 W cm−2 in the H2-O2 fuel cell and its initial voltage shows no signs of decreasing after running for 20 h under 0.2 A cm−2.
期刊介绍:
The Journal of Power Sources is a publication catering to researchers and technologists interested in various aspects of the science, technology, and applications of electrochemical power sources. It covers original research and reviews on primary and secondary batteries, fuel cells, supercapacitors, and photo-electrochemical cells.
Topics considered include the research, development and applications of nanomaterials and novel componentry for these devices. Examples of applications of these electrochemical power sources include:
• Portable electronics
• Electric and Hybrid Electric Vehicles
• Uninterruptible Power Supply (UPS) systems
• Storage of renewable energy
• Satellites and deep space probes
• Boats and ships, drones and aircrafts
• Wearable energy storage systems