TY - JOUR
T1 - Fluorene-Reinforced Polyamide Hybrid Proton Exchange Membranes with Ultralow Methanol Permeability and High Selectivity for Direct Methanol Fuel Cells
AU - Ma, Liying
AU - Luo, Feng
AU - Wang, Lanlin
AU - Gong, Jiangning
AU - Li, Jing
AU - Song, Hongxia
AU - Cai, Weiwei
N1 - Publisher Copyright:
© 2026 American Chemical Society
PY - 2026/6/12
Y1 - 2026/6/12
N2 - Proton exchange membranes (PEMs) for direct methanol fuel cells (DMFCs) must simultaneously achieve high proton conductivity, low methanol permeability, and robust stability; however, these properties are intrinsically coupled in hydrocarbon-based systems. Here, we report a fluorene-reinforced polyamide hybrid membrane that decouples proton transport from methanol crossover through a rational dual-phase design. A highly sulfonated phenylenediamine-based polyamide (PDP) is integrated with a rigid fluorene-containing polyamide (PFP), forming continuous proton-conducting domains confined within a mechanically robust framework. Strong acid–base interactions between sulfonic acid and amide groups generate a dynamically cross-linked network, which effectively suppresses swelling and methanol transport while preserving efficient proton conduction. As a result, the optimized DF-20 membrane exhibits a high proton conductivity of 0.27 S/cm, an ultralow methanol permeability of 1.57 × 10–7 cm2/s, and a selectivity nearly 1 order of magnitude higher than that of Nafion 117. More importantly, this intrinsic performance translates into a 57% enhancement in maximum power density in DMFC operation. This work establishes a fluorene-enabled hybridization strategy that provides a general pathway for designing high-selectivity hydrocarbon PEMs.
AB - Proton exchange membranes (PEMs) for direct methanol fuel cells (DMFCs) must simultaneously achieve high proton conductivity, low methanol permeability, and robust stability; however, these properties are intrinsically coupled in hydrocarbon-based systems. Here, we report a fluorene-reinforced polyamide hybrid membrane that decouples proton transport from methanol crossover through a rational dual-phase design. A highly sulfonated phenylenediamine-based polyamide (PDP) is integrated with a rigid fluorene-containing polyamide (PFP), forming continuous proton-conducting domains confined within a mechanically robust framework. Strong acid–base interactions between sulfonic acid and amide groups generate a dynamically cross-linked network, which effectively suppresses swelling and methanol transport while preserving efficient proton conduction. As a result, the optimized DF-20 membrane exhibits a high proton conductivity of 0.27 S/cm, an ultralow methanol permeability of 1.57 × 10–7 cm2/s, and a selectivity nearly 1 order of magnitude higher than that of Nafion 117. More importantly, this intrinsic performance translates into a 57% enhancement in maximum power density in DMFC operation. This work establishes a fluorene-enabled hybridization strategy that provides a general pathway for designing high-selectivity hydrocarbon PEMs.
KW - direct methanol fuel cell
KW - fluorene-based polymer
KW - methanol crossover suppression
KW - polyamide hybrid membrane
KW - proton exchange membrane
UR - https://www.scopus.com/pages/publications/105041673383
U2 - 10.1021/acsapm.6c01260
DO - 10.1021/acsapm.6c01260
M3 - 文章
AN - SCOPUS:105041673383
SN - 2637-6105
VL - 8
SP - 8750
EP - 8756
JO - ACS Applied Polymer Materials
JF - ACS Applied Polymer Materials
IS - 11
ER -