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通过将多壁碳纳米管掺入自交联含芴酮聚苯并咪唑来提高高温质子交换膜的性能和稳定性。

Enhancing Performance and Stability of High-Temperature Proton Exchange Membranes through Multiwalled Carbon Nanotube Incorporation into Self-Cross-Linked Fluorenone-Containing Polybenzimidazole.

作者信息

Huang Jinzhen, Wei Gongyi, Wu Aogui, Liu Dong, Wang Lei, Luo Jingli

机构信息

Shenzhen Key Laboratory of Polymer Science and Technology, College of Materials Science and Engineering, Shenzhen University, Shenzhen, Guangdong 518060, China.

School of Materials Science and Engineering, Hanshan Normal University, Chaozhou, Guangdong 521041, China.

出版信息

ACS Appl Mater Interfaces. 2024 May 22;16(20):25994-26003. doi: 10.1021/acsami.4c00052. Epub 2024 May 13.

Abstract

Addressing critical challenges in enhancing the oxidative stability and proton conductivity of high-temperature proton exchange membranes (HT-PEMs) is pivotal for their commercial viability. This study uncovers the significant capacity of multiwalled carbon nanotubes (MWNTs) to absorb a substantial amount of phosphoric acid (PA). The investigation focuses on incorporating long-range ordered hollow MWNTs into self-cross-linked fluorenone-containing polybenzimidazole (FPBI) membranes. The absorbed PA within MWNTs and FPBI forms dense PA networks within the membrane, effectively enhancing the proton conductivity. Moreover, the exceptional inertness of MWNTs plays a vital role in reinforcing the oxidation resistance of the composite membranes. The proton conductivity of the 1.5% CNT-FPBI membrane is measured at 0.0817 S cm at 160 °C. Under anhydrous conditions at the same temperature, the power density of the 1.5% CNT-FPBI membrane reaches 831.3 mW cm. Notably, the power density remains stable even after 200 h of oxidation testing and 250 h of operational stability in a single cell. The achieved power density and long-term stability of the 1.5% CNT-FPBI membrane surpass the recently reported results. This study introduces a straightforward approach for the systematic design of high-performance and robust composite HT-PEMs for fuel cells.

摘要

应对高温质子交换膜(HT-PEMs)在提高氧化稳定性和质子传导率方面的关键挑战对其商业可行性至关重要。本研究揭示了多壁碳纳米管(MWNTs)吸收大量磷酸(PA)的显著能力。该研究重点在于将长程有序空心MWNTs掺入自交联含芴酮聚苯并咪唑(FPBI)膜中。MWNTs和FPBI内吸收的PA在膜内形成致密的PA网络,有效提高了质子传导率。此外,MWNTs的特殊惰性在增强复合膜的抗氧化性方面起着至关重要的作用。1.5% CNT-FPBI膜在160°C下的质子传导率测得为0.0817 S/cm。在相同温度的无水条件下,1.5% CNT-FPBI膜的功率密度达到831.3 mW/cm²。值得注意的是,即使在单电池中经过200小时的氧化测试和250小时的运行稳定性测试后,功率密度仍保持稳定。1.5% CNT-FPBI膜所实现的功率密度和长期稳定性超过了最近报道的结果。本研究为系统设计用于燃料电池的高性能且坚固的复合HT-PEMs引入了一种简单方法。

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