Molecular modeling assisted design of new monomers utilized in fuel cell proton exchange membranes

被引:5
作者
Laflamme, Patrick [1 ]
Beaudoin, Alexandre [1 ]
Chapaton, Thomas [2 ]
Spino, Claude [1 ]
Soldera, Armand [1 ]
机构
[1] Univ Sherbrooke, Dept Chem, Sherbrooke, PQ J1K 2R1, Canada
[2] Gen Motors R&D Ctr, Warren, MI 48090 USA
基金
加拿大自然科学与工程研究理事会;
关键词
Molecular modeling; Infrared spectra; Nafion; Deprotonation; Triflic acid; DFT; NAFION; TRANSPORT; IR;
D O I
10.1016/j.memsci.2012.01.027
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
An extensive understanding of the proton dissociation mechanism that occurs in Nafion((R)) is of great importance in the development of an improved proton exchange membrane for use in fuel cells (PEMFC). As the proton leaves the sulfonic acid group, structural changes within the Nafion((R)) side-chain take place. To visualize such a process, molecular modeling is particularly useful. From an experimental viewpoint, changes that occur in bonds and atomic environment can be characterized by a judicious analysis of the normal modes of vibration. Using quantum chemical modeling of the infrared spectra of Nafion((R)), it was shown that a model system consisting of two triflic acid (TfOH) molecules accurately predicts the process of deprotonation in Nafion((R)) involving the addition of water molecules. This model system allows the visualization of the deprotonation events by monitoring the changes in selected frequencies. We thus observed that only the sulfonic acid groups containing the departing proton undergoes structural modification before the first proton dissociation occurs. In turn, we used this information to design new monomers that respond to these particular changes resulting from the electronegativity of fluorine atoms. The rigidity of the proposed architecture should also exhibit improved mechanical properties. (C) 2012 Elsevier B.V. All rights reserved.
引用
收藏
页码:56 / 60
页数:5
相关论文
共 22 条
[1]   INTERACTION OF H2O, CH3OH, (CH3)(2)O, CH3CN, AND PYRIDINE WITH THE SUPERACID PERFLUOROSULFONIC MEMBRANE NAFION - AN IR AND RAMAN-STUDY [J].
BUZZONI, R ;
BORDIGA, S ;
RICCHIARDI, G ;
SPOTO, G ;
ZECCHINA, A .
JOURNAL OF PHYSICAL CHEMISTRY, 1995, 99 (31) :11937-11951
[2]  
Capehart W., 2011, [No title captured], Patent No. [7,863,402 B2, US, 7863402]
[3]  
Capehart W., 2010, [No title captured], Patent No. [7,718,753 B2, US, 7718753]
[4]   Badger's rule revisited [J].
Cioslowski, J ;
Liu, GH ;
Castro, RAM .
CHEMICAL PHYSICS LETTERS, 2000, 331 (5-6) :497-501
[5]   Defect structure for proton transport in a triflic acid monohydrate solid [J].
Eikerling, M ;
Paddison, SJ ;
Pratt, LR ;
Zawodzinski, TA .
CHEMICAL PHYSICS LETTERS, 2003, 368 (1-2) :108-114
[6]  
Frisch M. J., 2016, Gaussian 03 Revision B.03
[7]   Probing proton dissociation in ionic polymers by means of in situ ATR-FTIR spectroscopy [J].
Grosmaire, Lidwine ;
Castagnoni, Samuel ;
Huguet, Patrice ;
Sistat, Philippe ;
Boucher, Mario ;
Bouchard, Patrick ;
Bebin, Philippe ;
Deabate, Stefano .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2008, 10 (11) :1577-1583
[8]   Nano structure of NAFION: a SAXS study [J].
Haubold, HG ;
Vad, T ;
Jungbluth, H ;
Hiller, P .
ELECTROCHIMICA ACTA, 2001, 46 (10-11) :1559-1563
[9]   ION-TRANSPORT AND CLUSTERING IN NAFION PERFLUORINATED MEMBRANES [J].
HSU, WY ;
GIERKE, TD .
JOURNAL OF MEMBRANE SCIENCE, 1983, 13 (03) :307-326
[10]  
KESTNER NR, 1999, REV COMPUTATIONAL CH, V13