microporous layer
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2022 ◽  
Vol 522 ◽  
pp. 230998
Author(s):  
Yuming Wu ◽  
Sahil Garg ◽  
Mengran Li ◽  
Mohamed Nazmi Idros ◽  
Zhiheng Li ◽  
...  

2021 ◽  
Vol MA2021-02 (36) ◽  
pp. 1034-1034
Author(s):  
Peng Wang ◽  
Hironori Nakajima ◽  
Tatsumi Kitahara

2021 ◽  
Vol MA2021-02 (36) ◽  
pp. 1039-1039
Author(s):  
Nathaniel Metzger ◽  
Archana Sekar ◽  
Jun Li ◽  
Xianglin Li

2021 ◽  
Vol MA2021-02 (36) ◽  
pp. 1035-1035
Author(s):  
Yen-Chun Chen ◽  
Anne Berger ◽  
Thomas J. Schmidt ◽  
Felix N. Buechi

2021 ◽  
Vol MA2021-02 (40) ◽  
pp. 1208-1208
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Catherine M. Weiss ◽  
Brian P Setzler ◽  
Lin Shi ◽  
Shimshon Gottesfeld ◽  
Yushan Yan

2021 ◽  
Vol 104 (8) ◽  
pp. 117-127
Author(s):  
Peng Wang ◽  
Hironori Nakajima ◽  
Tatsumi Kitahara

Energies ◽  
2021 ◽  
Vol 14 (19) ◽  
pp. 6232
Author(s):  
Viorel Ionescu ◽  
Adriana Elena Balan ◽  
Alexandra Maria Isabel Trefilov ◽  
Ioan Stamatin

The microporous layer (MPL) constitutes a critical component of the gas diffusion layer within the membrane electrode assembly (MEA) of a proton exchange membrane fuel cell (PEM FC). The MPL plays a fundamental role in various processes during FC operation: control of membrane humidification, heat distribution throughout the MEA, excess water removal from the cathode, and transportation of fuel to the reaction sites. Previously, we investigated the performance of a fuel cell unit employing an MPL based on laser-induced graphene (LIG) produced by the laser pyrolysis of polymeric (polyimide) substrates. The prototype LIG-based unit was tested over the typical range of relative humidity and temperature conditions. The polarization curves observed in that study displayed broad ohmic loss regions and high stability along the concentration loss regions, an interesting electrical behavior that justified developing the present voltage-current density study for the same FC prototype compared to one bearing a commercial pyrolytic carbon black MPL. The same operating conditions as in the first study were applied, in order to properly compare the performance efficiencies between the two systems; these are evaluated by considering the thermodynamic losses influence on the exergy efficiency, to exceed any limitations inherent in the classical energy efficiency analysis.


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