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Pt-Ru catalysts prepared by high energy ball-milling for PEMFC and DMFC: Influence of the synthesis conditions

机译:PEMFC和DMFC高能球磨制备的Pt-Ru催化剂:合成条件的影响

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High energy ball-milling was used to prepare several unsupported Pt-Ru anode catalysts for PEM- and direct methanol fuel cells. Pt and Ru with a 50:50 nominal Pt/Ru ratio were ball-milled at various ball-to-powder weight ratios (from 4/1 to 12/1) and with various Pt:Ru:MgH{sub}2 proportions (from 1:1:2 to 1:1:10), where MgH{sub}2 is a leacheable dispersive agent. The presence of MgH{sub}2 is necessary to obtain unsupported catalysts with a specific surface area of between 50 and 75 m{sup}2g{sup}(-1). The ball-milling parameters greatly affected the relative proportions of the three phases constituting the catalysts. These phases are: Pt(Ru) alloy nanocrystallites, unalloyed Ru crystallites and nanocrystallites. The best CO tolerant catalyst is obtained by using a 12/1 ball-to-powder ratio and a 1:1:8 Pt:Ru:MgH{sub}2 proportion of dispersive agent. It is made of 57 at.% of a nanocrystalline (3 nm) Pt{sub}80Ru{sub}20 alloy, 42 at.% of a nanocrystalline (3 nm) Ru phase and 1 at.% of a crystalline (~40 nm) Ru phase. This catalyst has the lowest Pt/Ru surface ratio (0.9), the highest content in nanocrystalline Ru, and the highest ratio of oxidized/metallic Ru (3.3). Both Pt-Ru alloy and nanocrystalline Ru participate to the CO tolerance. The best CO tolerant catalyst is, however, not the best catalyst in DMFC. The latter is obtained by using a 4/1 ball-to-powder ratio and a 1:1:6 Pt:Ru:MgH{sub}2 proportion. Within the starting 50:50 Pt-Ru nominal atomic ratio, no specific correlation was found between catalyst performance in DMFC and atomic surface Pt/Ru ratio, nor nanocrystalline Ru content, nor oxidized/metallic Ru ratio. Performances of the best ball-milled catalysts are compared to those of commercial unsupported catalysts in PEMFC and DMFC.
机译:高能球磨被用于制备几种用于PEM和直接甲醇燃料电池的无载体Pt-Ru阳极催化剂。将标称Pt / Ru比为50:50的Pt和Ru在各种球粉重量比(从4/1到12/1)下以各种Pt:Ru:MgH {sub} 2的比例进行球磨(从1:1:2到1:1:10),其中MgH {sub} 2是可浸出的分散剂。 MgH {sub} 2的存在是获得比表面积介于50和75 m {sup} 2g {sup}(-1)之间的无载体催化剂所必需的。球磨参数极大地影响了构成催化剂的三相的相对比例。这些相为:Pt(Ru)合金纳米微晶,非合金Ru微晶和纳米微晶。通过使用12/1球粉比和1:1:8 Pt:Ru:MgH {sub} 2比例的分散剂可获得最佳的耐CO催化剂。它由57 at。%的纳米晶体(3 nm)Pt {sub} 80Ru {sub} 20合金,42 at。%的纳米晶体(3 nm)Ru相和1 at。%的晶体(〜40 nm)Ru相。该催化剂具有最低的Pt / Ru表面比率(0.9),最高的纳米晶体Ru含量和最高的氧化/金属Ru比率(3.3)。 Pt-Ru合金和纳米晶Ru均参与CO耐受性。但是,最佳的耐CO催化剂不是DMFC中的最佳催化剂。后者通过使用4/1的球粉比和1:1:6的Pt:Ru:MgH {sub} 2比例获得。在开始的50:50 Pt-Ru标称原子比内,在DMFC中的催化剂性能与原子表面Pt / Ru比,纳米晶态Ru含量或氧化/金属Ru比之间均未发现特定的相关性。在PEMFC和DMFC中,将最佳球磨催化剂的性能与市售无载体催化剂的性能进行了比较。

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