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聚(苯并咪唑)中双功能质子转移的格罗特斯机制。

The Grotthuss mechanism for bifunctional proton transfer in poly(benzimidazole).

作者信息

Thisuwan Jittima, Promma Phorntep, Sagarik Kritsana

机构信息

Division of Science, Faculty of Education, Nakhon Phanom University, Nakhon Phanom 48000, Thailand.

School of Chemistry, Institute of Science, Suranaree University of Technology, Nakhon Ratchasima 30000, Thailand.

出版信息

R Soc Open Sci. 2021 Dec 15;8(12):211168. doi: 10.1098/rsos.211168. eCollection 2021 Dec.

Abstract

Poly(benzimidazole) (PBI) has received considerable attention as an effective high-temperature polymer electrolyte membrane for fuel cells. In this work, the Grotthuss mechanism for bifunctional proton transfer in PBI membranes was studied using density functional theory and transition state theory. This study focused on the reaction paths and kinetics for bifunctional proton transfer scenarios in neutral ([PBI]), single (H[PBI]) and double-protonated (H[PBI]) dimers. The theoretical results showed that the energy barriers and strength for H-bonds are sensitive to the local dielectric environment. For [PBI] with = 1, the uphill potential energy curve is attributed to extraordinarily strong ion-pair H-bonds in the transition structure, regarded as a 'dipolar energy trap'. For = 23, the ion-pair charges are partially neutralized, leading to a reduction in the electrostatic attraction in the transition structure. The dipolar energy trap appears to prohibit interconversion between the precursor, transition and proton-transferred structures, which rules out the possibility for [PBI] to be involved in the Grotthuss mechanism. For H[PBI] and H[PBI] with = 1, the interconversion involves a low energy barrier, and the increase in the energy barrier for = 23 can be attributed to an increase in the strength of the protonated H-bonds in the transition structure: the local dielectric environment enhances the donor-acceptor interaction of the protonated H-bonds. Analysis of the rate constants confirmed that the quantum effect is not negligible for the N-H … N H-bond especially at low temperatures. Agreement between the theoretical and experimental data leads to the conclusion that the concerted bifunctional proton transfer in H[PBI] in a high local dielectric environment is 'the rate-determining scenario'. Therefore, a low local dielectric environment can be one of the required conditions for effective proton conduction in acid-doped PBI membranes. These theoretical results provide insights into the Grotthuss mechanism, which can be used as guidelines for understanding the fundamentals of proton transfers in other bifunctional H-bond systems.

摘要

聚苯并咪唑(PBI)作为一种用于燃料电池的高效高温聚合物电解质膜受到了广泛关注。在这项工作中,使用密度泛函理论和过渡态理论研究了PBI膜中双功能质子转移的Grotthuss机制。本研究聚焦于中性([PBI])、单质子化(H[PBI])和双质子化(H₂[PBI])二聚体中双功能质子转移情况的反应路径和动力学。理论结果表明,氢键的能垒和强度对局部介电环境敏感。对于ε = 1的[PBI],上坡势能曲线归因于过渡结构中异常强的离子对氢键,被视为“偶极能阱”。对于ε = 23,离子对电荷部分中和,导致过渡结构中静电吸引力降低。偶极能阱似乎阻止了前体、过渡态和质子转移结构之间的相互转化,这排除了[PBI]参与Grotthuss机制的可能性。对于ε = 1的H[PBI]和H₂[PBI],相互转化涉及低能垒,而ε = 23时能垒的增加可归因于过渡结构中质子化氢键强度的增加:局部介电环境增强了质子化氢键的供体 - 受体相互作用。速率常数分析证实,对于N - H…N氢键,量子效应不可忽略,尤其是在低温下。理论和实验数据之间的一致性得出结论,在高局部介电环境中H₂[PBI]中的协同双功能质子转移是“速率决定情况”。因此,低局部介电环境可能是酸掺杂PBI膜中有效质子传导的必要条件之一。这些理论结果为Grotthuss机制提供了见解,可作为理解其他双功能氢键系统中质子转移基本原理的指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dba9/8672066/e6b6ae819ed3/rsos211168f01.jpg

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