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Gram-scale synthesis of highly active and durable octahedral PtNi nanoparticle catalysts for proton exchange membrane fuel cell

机译:质子交换膜燃料电池高活性和耐用的八面体PTNI纳米粒子催化剂的革兰尺合成

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摘要

Proton exchange membrane fuel cells (PEMFC) are regarded as a promising renewable energy source for a future hydrogen energy society. However, highly active and durable catalysts are required for the PEMFCs because of their intrinsic high overpotential at the cathode and operation under the acidic condition for oxygen reduction reaction (ORR). Since the discovery of the exceptionally high surface activity of PtNi(111), the octahedral PtNi nanoparticles have been synthesized and tested. Nonetheless, their milligram-scale synthesis method and poor durability make them unsuitable for the commercialization of PEMFCs. In this study, we focus on gram-scale synthesis of octahedral PtNi nanoparticles with Pt overlayers (PtNi@Pt) supported on the carbon, resulting in enhanced catalytic activity and durability. Such PtNi@Pt catalysts show high mass activity (1.24 A mgPt) at 0.9 V (vs RHE) for the ORR, compared to commercial Pt/C (0.22 A mgPt). Single-cell performance and electrochemical impedance spectroscopy (EIS) were also tested. The PtNi@Pt catalysts showed enhanced current density of 3.1 A cm at 0.6 V in O2 flow while the commercial Pt/C had the value of 2.5 A cm. After 30,000 cycles of the accelerated degradation test (ADT), the PtNi@Pt still showed better performance than the commercial Pt/C in a single-cell system. The Pt layers deposition could enhance the catalytic performance and durability of octahedral PtNi nanoparticles.
机译:质子交换膜燃料电池(PEMFC)被视为未来氢能社会的有前可再生能源。然而,PEMFCs所需的高活性和耐用的催化剂是因为它们在阴极的固有高过电位和在氧气还原反应的酸性条件下的操作(ORR)。由于发现PTNI(111)的异常高表面活性,因此已经合成并测试了八面体PTNI纳米颗粒。尽管如此,它们的毫克规模的合成方法和耐用性差使得它们不适合PEMFC的商业化。在这项研究中,我们专注于含有Pt覆盖物(PTNI @ Pt)的八半面植物纳米颗粒的克尺寸合成,得到碳的支持,导致催化活性和耐久性增强。这种PTNI @ Pt催化剂在与商业Pt / C(0.22例MgPT)相比,为ORR显示为0.9V(VS RHE)的高质量活性(1.24A迁移)。还测试了单细胞性能和电化学阻抗光谱(EIS)。 PTNI @ Pt催化剂在O 2流动中显示出在0.6V的0.6V的增强电流密度,而商用PT / C的值为2.5 a cm。在加速降解试验(ADT)的30,000个周期后,PTNI @ PT仍然比单电池系统中的商业PT / C更好地表现出更好的性能。 Pt层沉积可增强八面体PTNI纳米颗粒的催化性能和耐久性。

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