Toward Highly Stable Electrocatalysts via Nanoparticle Pore Confinement

被引:304
作者
Galeano, Carolina [2 ]
Meier, Josef C. [1 ,3 ]
Peinecke, Volker [4 ]
Bongard, Hans [2 ]
Katsounaros, Ioannis [1 ]
Topalov, Angel A. [1 ,3 ]
Lu, Anhui [5 ]
Mayrhofer, Karl J. J. [1 ]
Schueth, Ferdi [2 ]
机构
[1] Max Planck Inst Eisenforsch GmbH, Dept Interface Chem & Surface Engn, D-40237 Dusseldorf, Germany
[2] Max Planck Inst Kohlenforsch, Dept Heterogeneous Catalysis, D-45470 Mulheim, Germany
[3] Ruhr Univ Bochum, Ctr Electrochem Sci, D-44780 Bochum, Germany
[4] Fuel Cell Res Ctr ZBT GmbH, D-47057 Duisburg, Germany
[5] Dalian Univ Technol, State Key Lab Fine Chem, Dalian 116024, Peoples R China
关键词
OXYGEN REDUCTION REACTION; MEMBRANE FUEL-CELL; CATHODE CATALYST SUPPORT; MESOPOROUS CARBONS; ELECTROLYTE; PLATINUM; DEGRADATION; TEMPERATURE; DURABILITY; NANOCATALYSTS;
D O I
10.1021/ja308570c
中图分类号
O6 [化学];
学科分类号
070301 [无机化学];
摘要
The durability of electrode materials is a limiting parameter for many electrochemical energy conversion systems. In particular, electrocatalysts for the essential oxygen reduction reaction (ORR) present some of the most challenging instability issues shortening their practical lifetime. Here, we report a mesostructured graphitic carbon support, Hollow Graphitic Spheres (HGS) with a specific surface area exceeding 1000 m(2) g(-1) and precisely controlled pore structure, that was specifically developed to overcome the long-term catalyst degradation, while still sustaining high activity. The synthetic pathway leads to platinum nanoparticles of approximately 3 to 4 nm size encapsulated in the HGS pore structure that are stable at 850 degrees C and, more importantly, during simulated accelerated electrochemical aging. Moreover, the high stability of the cathode electrocatalyst is also retained in a fully assembled polymer electrolyte membrane fuel cell (PEMFC). Identical location scanning and scanning transmission electron microscopy (IL-SEM and IL-STEM) conclusively proved that during electrochemical cycling the encapsulation significantly suppresses detachment and agglomeration of Pt nanoparticles, two of the major degradation mechanisms in fuel cell catalysts of this particle size. Thus, beyond providing an improved electrocatalyst, this study describes the blueprint for targeted improvement of fuel cell catalysts by design of the carbon support.
引用
收藏
页码:20457 / 20465
页数:9
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