Activating triple-phase boundary via building oxygen-electrolyte interfaces to construct high-performance pH-disparate direct liquid fuel cells

2021 ◽  
pp. 129480
Author(s):  
Xianda Sun ◽  
Yinshi Li ◽  
Chao Xie ◽  
Mingsheng Hao ◽  
Mingjia Li ◽  
...  
2018 ◽  
Vol 6 (26) ◽  
pp. 12768-12781 ◽  
Author(s):  
Karthikeyan K. Karuppanan ◽  
Appu V. Raghu ◽  
Manoj Kumar Panthalingal ◽  
Sivasubramanian Ramanathan ◽  
Thanarajan Kumaresan ◽  
...  

Pt-grafted, hierarchical mesoporous carbon nanofibers (Pt/MPCNFs) electrocatalysts have been developed using electrospinning for high-performance PEM fuel cells.


Catalysts ◽  
2021 ◽  
Vol 11 (9) ◽  
pp. 1065
Author(s):  
Oliver Lorenz ◽  
Alexander Kühne ◽  
Martin Rudolph ◽  
Wahyu Diyatmika ◽  
Andrea Prager ◽  
...  

Understanding the reaction pathways for the hydrogen oxidation reaction (HOR) and the oxygen reduction reaction (ORR) is the key to design electrodes for solid acid fuel cells (SAFCs). In general, electrochemical reactions of a fuel cell are considered to occur at the triple-phase boundary where an electrocatalyst, electrolyte and gas phase are in contact. In this concept, diffusion processes of reaction intermediates from the catalyst to the electrolyte remain unconsidered. Here, we unravel the reaction pathways for open-structured Pt electrodes with various electrode thicknesses from 15 to 240 nm. These electrodes are characterized by a triple-phase boundary length and a thickness-depending double-phase boundary area. We reveal that the double-phase boundary is the active catalytic interface for the HOR. For Pt layers ≤ 60 nm, the HOR rate is rate-limited by the processes at the gas/catalyst and/or the catalyst/electrolyte interface while the hydrogen surface diffusion step is fast. For thicker layers (>60 nm), the diffusion of reaction intermediates on the surface of Pt becomes the limiting process. For the ORR, the predominant reaction pathway is via the triple-phase boundary. The double-phase boundary contributes additionally with a diffusion length of a few nanometers. Based on our results, we propose that the molecular reaction mechanism at the electrode interfaces based upon the triple-phase boundary concept may need to be extended to an effective area near the triple-phase boundary length to include all catalytically relevant diffusion processes of the reaction intermediates.


Author(s):  
Juan Carlos Jimenez ◽  
Jimena A. Olmos-Asar ◽  
Esteban A. Francheschini ◽  
Marcelo Mario Mariscal

Despite the great scientific effort, there are still some aspects of polymeric membrane-based fuel cells (PEMFC) operation that are difficult to access experimentally. This is the case of the so-called...


2010 ◽  
Vol 195 (19) ◽  
pp. 6500-6503 ◽  
Author(s):  
Kohei Miyazaki ◽  
Takeshi Abe ◽  
Koji Nishio ◽  
Haruyuki Nakanishi ◽  
Zempachi Ogumi

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