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首页> 外文期刊>ACS catalysis >Tuning Electronic Structure and Lattice Diffusion Barrier of Ternary Pt-In-Ni for Both Improved Activity and Stability Properties in Oxygen Reduction Electrocatalysis
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Tuning Electronic Structure and Lattice Diffusion Barrier of Ternary Pt-In-Ni for Both Improved Activity and Stability Properties in Oxygen Reduction Electrocatalysis

机译:在氧还原电催化中的改进活性和稳定性特性调整三元Pt-In-Ni的电子结构和晶格扩散屏障

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摘要

Pt-based alloy electrocatalysts with both good oxygen reduction reaction (ORR) activity and stability have been widely recognized as the key points to realize the fuel cell economy, which however has remained a challenge in the research field. Here, we report an achievement of both improved ORR activity and catalyst stability by incorporating post transition-metal indium into Pt-Ni alloy nanoparticles. Theoretical simulations suggest the introduction of indium would effectively increase the lattice atom diffusion energy barrier and decrease the particle surface energy, which help with improving the structural stability by decelerating internal Ni leaching and stabilizing the active surface. In the meantime, the electronic structure and consequently ORR activity property of this ternary alloy catalyst would be tuned by controlling its particle composition. Ternary Pt-In-Ni alloy catalysts with controlled particle compositions are synthesized and studied for the ORR properties, which show good agreement with the theoretical study. The Pt2In0.2Ni1.8 nanoparticles with the optimal composition exhibit an initial mass activity of 0.76 A mg(pt)(-1) and retain similar to 97.5% of initial activity after accelerated stress test.
机译:具有良好的氧还原反应(ORR)活性和稳定性的PT基合金电催化剂被广泛认为是实现燃料电池经济的关键点,然而在研究领域仍然存在挑战。在这里,我们通过将后过渡金属铟掺入Pt-Ni合金纳米颗粒来报告改善的ORR活性和催化剂稳定性。理论模拟表明铟的引入将有效地增加晶格原子扩散能阻挡并降低颗粒表面能,这通过减速内部Ni浸出并稳定活性表面来帮助改善结构稳定性。同时,通过控制其颗粒组合物来调节该三元合金催化剂的电子结构和所以ORR活性性质。合成具有受控颗粒组合物的三元Pt-In-Ni合金催化剂,用于锻造和研究orr属性,其与理论研究表现出良好的一致性。具有最佳组合物的PT2IN0.2NI1.8纳米颗粒表现出0.76毫克(Pt)( - 1)的初始质量活性,并在加速应力试验后保留类似于97.5%的初始活性。

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