材料科学
质子交换膜燃料电池
石墨烯
Nafion公司
阳极
氮化硼
二硫化钼
电导率
氢
氢燃料
化学工程
渡线
质子输运
纳米技术
质子
复合材料
电化学
燃料电池
电极
有机化学
化学
工程类
物理化学
人工智能
物理
量子力学
计算机科学
作者
Shanmukh Kutagulla,Nam Hoang Le,Isabel Terry Caldino Bohn,Benjamin J. Stacy,Christopher S. Favela,John Slack,Andrew M. Baker,Hyeongjoon Kim,Hyeon Suk Shin,Brian A. Korgel,Deji Akinwande
标识
DOI:10.1021/acsami.3c12650
摘要
Hydrogen fuel cells based on proton exchange membrane fuel cell (PEMFC) technology are promising as a source of clean energy to power a decarbonized future. However, PEMFCs are limited by a number of major inefficiencies; one of the most significant is hydrogen crossover. In this work, we comprehensively study the effects of two-dimensional (2D) materials applied to the anode side of the membrane as H 2 barrier coatings on Nafion to reduce crossover effects on hydrogen fuel cells, while studying adverse effects on conductivity and catalyst performance in the beginning of life testing. The barrier layers studied include graphene, hexagonal boron nitride (hBN), amorphous boron nitride (aBN), and varying thicknesses of molybdenum disulfide (MoS 2 ), all chosen due to their expected stability in a fuel cell environment. Crossover mitigation in the materials studied ranges from 4.4% (1 nm MoS 2 ) to 46.1% (graphene) as compared to Nafion 211. Effects on proton conductivity are also studied, suggesting high areal proton transport in materials previously thought to be effectively nonconductive, such as 2 nm MoS 2 and amorphous boron nitride under the conditions studied. The results indicate that a number of 2D materials are able to improve crossover effects, with those coated with 8 nm MoS 2 and 1 L graphene able to achieve greater crossover reduction while minimizing conductivity penalty.
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