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Stabilization of platinum–nickel alloy nanoparticles with a sulfur-doped graphene support in polymer electrolyte membrane fuel cells

机译:在聚合物电解质膜燃料电池中具有硫掺杂石墨烯载体的铂 - 镍合金纳米粒子的稳定化

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Polymer electrolyte membrane fuel cells (PEMFC) are limited by the sluggish oxygen reduction reaction (ORR) at the cathode, necessitating the use of platinum-based catalysts for practical use. However, such catalysts suffer from degradation issues related to the catalyst and the support material that prevent prolonged operation. Sulfur-doped graphene (SG) as a catalyst support material promises high durability with pure Pt, but its contribution to lattice-strained Pt as in bimetallic alloys has not yet been determined. In this work, platinum–nickel alloy nanoparticles with SG are synthesized (denoted as Pt–Ni/SG), then chemically dealloyed (denoted as Pt–Ni/SG-DA) and finally subjected to a post heat treatment (denoted as Pt–Ni/SG-PHT). The prepared catalysts Pt–Ni/SG, Pt–Ni/SG-DA and Pt–Ni/SG-PHT are physically characterized and electrochemically tested in half-cell conditions. Pt–Ni/SG-PHT is found to be superior, exhibiting the highest ECSA and mass activity retention with losses of 27 and 28% respectively after 1500 cycles from 0.05 to 1.3 V vs. RHE in HClO _(4) . This is compared to a 59% ECSA loss and 69% activity loss for commercial Pt/C under the same conditions. Hence, the strong interaction between the metal particles and sulfur-doped graphene resulting from the annealing process as in Pt–Ni/SG-PHT yields a highly stable electrocatalyst for the ORR.
机译:聚合物电解质膜燃料电池(PEMFC)受阴极的缓慢氧还原反应(ORR)的限制,需要使用基于铂的催化剂进行实际使用。然而,这种催化剂患有与催化剂和防止延长操作的载体材料有关的降解问题。硫掺杂的石墨烯(SG)作为催化剂载体材料与纯PT承诺高耐久性,但尚未确定其对双金属合金中的晶格应变Pt的贡献。在这项工作中,合成具有Sg的铂 - 镍合金纳米粒子(表示为Pt-Ni / Sg),然后化学卸载(表示为Pt-Ni / SG-DA),最终进行后热处理(表示为Pt- ni / sg-pht)。制备的催化剂Pt-Ni / sg,Pt-Ni / Sg-Da和Pt-Ni / Sg-pht在物理上表征并在半细胞条件下进行电化学测试。发现Pt-Ni / sg-pht是优异的,在1500次循环中,在HCLO _(4)中的0.05至1.3V与rhe的1500次循环后,分别在27和28%的损失中表现出最高的ECSA和质量活性。将其与在相同条件下的59%的ECSA损失和商业PT / C的69%活性损失。因此,金属颗粒和硫掺杂石墨烯之间的强相互作用由退火工艺引起的作为Pt-Ni / sg-pht产生的,为ORR产生高度稳定的电催化剂。

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