Exergetic Performance of a PEM Fuel Cell with Laser-Induced Graphene as the Microporous Layer

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 d...

Full description

Bibliographic Details
Main Authors: Viorel Ionescu, Adriana Elena Balan, Alexandra Maria Isabel Trefilov, Ioan Stamatin
Format: Article
Language:English
Published: MDPI AG 2021-09-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/14/19/6232
_version_ 1827680849579999232
author Viorel Ionescu
Adriana Elena Balan
Alexandra Maria Isabel Trefilov
Ioan Stamatin
author_facet Viorel Ionescu
Adriana Elena Balan
Alexandra Maria Isabel Trefilov
Ioan Stamatin
author_sort Viorel Ionescu
collection DOAJ
description 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.
first_indexed 2024-03-10T07:03:11Z
format Article
id doaj.art-c2c4a807b6f04bddad1a2657b27d4adf
institution Directory Open Access Journal
issn 1996-1073
language English
last_indexed 2024-03-10T07:03:11Z
publishDate 2021-09-01
publisher MDPI AG
record_format Article
series Energies
spelling doaj.art-c2c4a807b6f04bddad1a2657b27d4adf2023-11-22T16:01:17ZengMDPI AGEnergies1996-10732021-09-011419623210.3390/en14196232Exergetic Performance of a PEM Fuel Cell with Laser-Induced Graphene as the Microporous LayerViorel Ionescu0Adriana Elena Balan1Alexandra Maria Isabel Trefilov2Ioan Stamatin3Department of Physics and Electronics, Ovidius University of Constanța, 900527 Constanța, Romania3NanoSAE Research Center, Faculty of Physics, University of Bucharest, 077125 Măgurele, RomaniaNational Institute for Laser, Plasma and Radiation Physics (INFLPR), 077125 Măgurele, Romania3NanoSAE Research Center, Faculty of Physics, University of Bucharest, 077125 Măgurele, RomaniaThe 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.https://www.mdpi.com/1996-1073/14/19/6232exergy efficiencylaser-induced graphene (LIG)microporous layerproton exchange membrane fuel cell (PEM FC)thermodynamic irreversibilityvoltage efficiency
spellingShingle Viorel Ionescu
Adriana Elena Balan
Alexandra Maria Isabel Trefilov
Ioan Stamatin
Exergetic Performance of a PEM Fuel Cell with Laser-Induced Graphene as the Microporous Layer
Energies
exergy efficiency
laser-induced graphene (LIG)
microporous layer
proton exchange membrane fuel cell (PEM FC)
thermodynamic irreversibility
voltage efficiency
title Exergetic Performance of a PEM Fuel Cell with Laser-Induced Graphene as the Microporous Layer
title_full Exergetic Performance of a PEM Fuel Cell with Laser-Induced Graphene as the Microporous Layer
title_fullStr Exergetic Performance of a PEM Fuel Cell with Laser-Induced Graphene as the Microporous Layer
title_full_unstemmed Exergetic Performance of a PEM Fuel Cell with Laser-Induced Graphene as the Microporous Layer
title_short Exergetic Performance of a PEM Fuel Cell with Laser-Induced Graphene as the Microporous Layer
title_sort exergetic performance of a pem fuel cell with laser induced graphene as the microporous layer
topic exergy efficiency
laser-induced graphene (LIG)
microporous layer
proton exchange membrane fuel cell (PEM FC)
thermodynamic irreversibility
voltage efficiency
url https://www.mdpi.com/1996-1073/14/19/6232
work_keys_str_mv AT viorelionescu exergeticperformanceofapemfuelcellwithlaserinducedgrapheneasthemicroporouslayer
AT adrianaelenabalan exergeticperformanceofapemfuelcellwithlaserinducedgrapheneasthemicroporouslayer
AT alexandramariaisabeltrefilov exergeticperformanceofapemfuelcellwithlaserinducedgrapheneasthemicroporouslayer
AT ioanstamatin exergeticperformanceofapemfuelcellwithlaserinducedgrapheneasthemicroporouslayer