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本文引用的文献

1
Exceptional Oxygen Reduction Reaction Activity and Durability of Platinum-Nickel Nanowires through Synthesis and Post-Treatment Optimization.通过合成和后处理优化实现铂镍纳米线卓越的氧还原反应活性和耐久性
ACS Omega. 2017 Apr 11;2(4):1408-1418. doi: 10.1021/acsomega.7b00054. eCollection 2017 Apr 30.
2
Palladium and gold nanotubes as oxygen reduction reaction and alcohol oxidation reaction catalysts in base.钯和金纳米管作为氧还原反应和醇氧化反应在碱性中的催化剂。
ChemSusChem. 2014 Jun;7(6):1739-44. doi: 10.1002/cssc.201400129. Epub 2014 Apr 23.
3
Highly crystalline multimetallic nanoframes with three-dimensional electrocatalytic surfaces.具有三维电催化表面的高结晶多金属纳米框架。
Science. 2014 Mar 21;343(6177):1339-43. doi: 10.1126/science.1249061. Epub 2014 Feb 27.
4
Compositional segregation in shaped Pt alloy nanoparticles and their structural behaviour during electrocatalysis.形态化 Pt 合金纳米粒子中的成分分离及其在电催化过程中的结构行为。
Nat Mater. 2013 Aug;12(8):765-71. doi: 10.1038/nmat3668. Epub 2013 Jun 16.
5
Changing the activity of electrocatalysts for oxygen reduction by tuning the surface electronic structure.通过调节表面电子结构来改变氧还原电催化剂的活性。
Angew Chem Int Ed Engl. 2006 Apr 28;45(18):2897-901. doi: 10.1002/anie.200504386.

铂镍纳米线的合成及其氧还原性能的优化

Synthesis of Platinum-nickel Nanowires and Optimization for Oxygen Reduction Performance.

作者信息

Alia Shaun M, Pivovar Bryan S

机构信息

Chemistry and Nanoscience Center, National Renewable Energy Laboratory;

Chemistry and Nanoscience Center, National Renewable Energy Laboratory.

出版信息

J Vis Exp. 2018 Apr 27(134):56667. doi: 10.3791/56667.

DOI:10.3791/56667
PMID:29757288
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6100805/
Abstract

Platinum-nickel (Pt-Ni) nanowires were developed as fuel cell electrocatalysts, and were optimized for the performance and durability in the oxygen reduction reaction. Spontaneous galvanic displacement was used to deposit Pt layers onto Ni nanowire substrates. The synthesis approach produced catalysts with high specific activities and high Pt surface areas. Hydrogen annealing improved Pt and Ni mixing and specific activity. Acid leaching was used to preferentially remove Ni near the nanowire surface, and oxygen annealing was used to stabilize near-surface Ni, improving durability and minimizing Ni dissolution. These protocols detail the optimization of each post-synthesis processing step, including hydrogen annealing to 250 °C, exposure to 0.1 M nitric acid, and oxygen annealing to 175 °C. Through these steps, Pt-Ni nanowires produced increased activities more than an order of magnitude than Pt nanoparticles, while offering significant durability improvements. The presented protocols are based on Pt-Ni systems in the development of fuel cell catalysts. These techniques have also been used for a variety of metal combinations, and can be applied to develop catalysts for a number of electrochemical processes.

摘要

铂镍(Pt-Ni)纳米线被开发用作燃料电池电催化剂,并针对氧还原反应中的性能和耐久性进行了优化。利用自发的电化置换将铂层沉积在镍纳米线基底上。该合成方法制备出了具有高比活性和高铂表面积的催化剂。氢气退火改善了铂和镍的混合以及比活性。酸浸用于优先去除纳米线表面附近的镍,而氧气退火用于稳定近表面的镍,提高耐久性并使镍溶解最小化。这些方案详细介绍了每个合成后处理步骤的优化,包括在250°C下进行氢气退火、暴露于0.1 M硝酸以及在175°C下进行氧气退火。通过这些步骤,制备出的铂镍纳米线的活性比铂纳米颗粒提高了一个多数量级,同时耐久性也有显著提升。所介绍的方案基于燃料电池催化剂开发中的铂镍体系。这些技术也已用于多种金属组合,并且可应用于开发用于许多电化学过程的催化剂。