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引用次数: 0
摘要
为了实现基于阴离子交换膜(AEM)的稳健水分解模块和燃料电池,四烷基磷(TAP)阳离子的设计和合成被描述为一类新的阳离子构建块,在恶劣条件下表现出显著的碱性稳定性。以三芳基膦衍生物和高活性芳炔为原料,高效合成了具有高空间要求芳基取代基的TAP阳离子,其碱性降解被高空间要求取代基显著抑制。以双(2,5-二甲基苯基)双(2,4,6-三甲基苯基)磷酸为例,大约60%的阳离子在强制条件下存活了27天(即在80°C的4 M KOH/CD3OH中),而四苯基磷酸在该温度的1 M KOH/CD3OH中在10分钟内完全降解。通过对碱性稳定的TAP阳离子的分解,不仅检测到三芳基膦氧化物(通常报道的是通过对阳离子磷中心的亲核攻击形成的),而且还检测到三芳基膦,这表明由于具有空间要求的芳香取代基,存在其他降解机制。在动力学分析中,发现双(2,5-二甲基苯基)双(2,4,6-三甲基苯基)磷的稳定性比苯三甲基铵高52倍,后者通常被用作AEMs的阳离子构建块。
Tetraarylphosphonium Cations with Excellent Alkaline-Resistant Performance for Anion-Exchange Membranes.
To realize the robust anion exchange membrane (AEM)-based water splitting modules and fuel cells, the design and synthesis of tetraarylphosphonium (TAP) cations are described as a new class of cationic building blocks that exhibit remarkable alkaline stability under harsh conditions. TAP cations with highly sterically demanding aromatic substituents were efficiently synthesized from triarylphosphine derivatives and highly reactive arynes, whose alkaline degradation proved to be suppressed dramatically by the sterically demanding substituents. In the case of bis(2,5-dimethylphenyl)bis(2,4,6-trimethylphenyl)phosphonium, for example, approximately 60% of the cation survived for 27 d under the forced conditions (i.e., in 4 M KOH/CD3OH at 80 °C), while tetraphenylphosphonium degraded completely within 10 min in 1 M KOH/CD3OH at that temperature. Through the decomposition of the alkaline-stable TAP cations, not only triarylphosphine oxides, which are often reported to form via the nucleophilic attack toward the cationic phosphorus center, but also triarylphosphines were detected, which suggested the presence of other degradation mechanisms due to the sterically demanding aromatic substituents. In kinetic analyses, bis(2,5-dimethylphenyl)bis(2,4,6-trimethylphenyl)phosphonium was found to exhibit 52 times higher stability compared to benzyltrimethylammonium, which is often employed as the cationic building block for AEMs.
期刊介绍:
ChemSusChem
Impact Factor (2016): 7.226
Scope:
Interdisciplinary journal
Focuses on research at the interface of chemistry and sustainability
Features the best research on sustainability and energy
Areas Covered:
Chemistry
Materials Science
Chemical Engineering
Biotechnology