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On the Micro-, Meso-, and Macroporous Structures of Polymer Electrolyte Membrane Fuel Cell Catalyst Layers

机译:聚合物电解质膜燃料电池催化剂层的微孔,中孔和大孔结构

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In this work, N2 adsorption was employed to investigate me effecrs of carbon support, platinum, and ionomer loading on the microstructure of polymer electrolyte membrane fuel eel! catalyst layers (CLs). Brunauer-Emmett-Teller and r-plot analyses of adsorption isotherms and pore-size distributions were used to study the microstructure of carbon supports, platinum/carbon catalyst powders, and three-component platinum/carbon/ionomer CLs. Two types of carbon supports were chosen For the investigation. Kerjen Black and Vulcan XC-72. CLs with a range of Nafion ionomer loadings were studied in order to evaluate the effect of an ionomer on the CL microstructure. Regions of adsorption were differentiated into micropores associated with the carbon primary particles (<2 nm). mesopores ascribed to rhe void space inside agglomerates (2-20 nm), and meso- to macroporous space inside aggregates of agglomerates (>50 nm). Ketjen Black was found to possess a significant Fraction of micropores. 25% of the total pore volume, in contrast to Vulcan XC-72, for which the corresponding fraction of micropores was 15% of the total pore volume. The microstructure of the carbon support was found to be a significant factor in the formation of the microstructure in the three-component CLs, serving as a rigid porous framework for distribution of platinum and the ionomer. It was found that platinum particle deposition on Ketjen Black occurs in. or at the mouth of, the support's micropores, thus affecting its effective microporosity. whereas platinum deposition on Vulcan XC-72 did not significantly affect the support's microstructure. The codeposition of ionomer in the CL strongly influenced its porosity, covering pores < 20 nm, which are ascribed to the pores within the primary carbon particles (pore sizes < 2 nm) and to the pores within agglomerates of the particles (pore sizes oF 2-20 nm).
机译:在这项工作中,N 2吸附被用于研究碳载体,铂和离子交联聚合物在聚合物电解质膜燃料鳗鱼微结构上的负载效率!催化剂层(CL)。吸附等温线和孔径分布的Brunauer-Emmett-Teller和r-图分析用于研究碳载体,铂/碳催化剂粉末和三组分铂/碳/离聚物CL的微观结构。选择了两种类型的碳载体进行研究。 Kerjen Black和Vulcan XC-72。为了评估离聚物对CL微结构的影响,研究了具有一定Nafion离聚物负载量的CL。吸附区域被区分为与碳初级颗粒(<2 nm)相关的微孔。中孔归因于附聚物内部的空隙空间(2-20 nm),以及附聚物聚集体内部的中孔至大孔空间(> 50 nm)。发现科琴黑具有显着的微孔级分。与Vulcan XC-72相比,其总孔体积为25%,而微孔XC-72的相应微孔比例为总孔体积的15%。发现碳载体的微观结构是在三组分CL中形成微观结构的重要因素,其充当用于分配铂和离聚物的刚性多孔骨架。已经发现铂颗粒在科琴黑上的沉积发生在载体的微孔中或在其口处,从而影响了其有效的微孔性。而Vulcan XC-72上的铂沉积并没有显着影响载体的微观结构。 CL中离聚物的共沉积强烈影响其孔隙率,覆盖<20 nm的孔,这归因于一次碳颗粒内的孔(孔径<2 nm)和颗粒附聚物内的孔(孔径oF 2 -20 nm)。

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