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作为质子交换膜燃料电池(PEMFC)电催化剂的全氟磺酸稳定的双金属铂 - 铬纳米颗粒。

Nafion-stabilised bimetallic Pt-Cr nanoparticles as electrocatalysts for proton exchange membrane fuel cells (PEMFCs).

作者信息

Gupta G, Sharma S, Mendes P M

机构信息

School of Chemical Engineering , University of Birmingham , Edgbaston , Birmingham , B15 2TT , UK . Email:

出版信息

RSC Adv. 2016 Sep 15;6(86):82635-82643. doi: 10.1039/c6ra16025e. Epub 2016 Aug 25.

Abstract

The current study investigated the unique combination of alloying (Pt with Cr) and Nafion stabilisation to reap the benefits of catalyst systems with enhanced catalytic activity and improved durability in PEMFCs. Pt-Cr alloy nanoparticles stabilised with Nafion were chosen in the current study owing to their higher stability in acidic and oxidising media at high temperatures compared to other Pt-transition metal alloys ( Pt-Ni, Pt-Co). Two different precursor : reducing agent (1 : 10 and 1 : 20) ratios were used in order to prepare two different alloys, denoted as Pt-Cr 10 and Pt-Cr 20. The Pt-Cr 20 alloy system (with composition PtCr) demonstrated higher electrocatalytic activity for the oxygen reduction reaction compared to commercial Pt/C (TKK) catalysts. Accelerated stress tests and single cell tests revealed that Nafion stabilised alloy catalyst systems displayed significantly enhanced durability (only ∼20% loss of ECSA) compared with Pt/C (50% loss of ECSA) due to improved catalyst-ionomer interaction. Furthermore, the Pt-Cr 20 alloy system demonstrated a current density comparable to that of Pt/C making them promising potential electrocatalysts for proton exchange membrane fuel cells.

摘要

当前的研究考察了合金化(铂与铬)和全氟磺酸稳定化的独特组合,以获取在质子交换膜燃料电池中具有增强催化活性和改善耐久性的催化剂体系的优势。在本研究中选择了用全氟磺酸稳定的铂 - 铬合金纳米颗粒,因为与其他铂 - 过渡金属合金(铂 - 镍、铂 - 钴)相比,它们在高温下的酸性和氧化介质中具有更高的稳定性。为了制备两种不同的合金,分别记为Pt - Cr 10和Pt - Cr 20,使用了两种不同的前驱体与还原剂比例(1∶10和1∶20)。与商业铂/碳(TKK)催化剂相比,Pt - Cr 20合金体系(组成成分为PtCr)对氧还原反应表现出更高的电催化活性。加速应力测试和单电池测试表明,由于改善了催化剂与离聚物的相互作用,全氟磺酸稳定的合金催化剂体系与铂/碳相比(铂/碳的有效比表面积损失50%)显示出显著增强的耐久性(有效比表面积仅损失约20%)。此外,Pt - Cr 20合金体系表现出与铂/碳相当的电流密度,使其成为质子交换膜燃料电池有前景的潜在电催化剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0c4f/5059791/fbfa620f77d9/c6ra16025e-f1.jpg

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