Influence of Graphene Oxide on the Ethanol Permeability and Ionic Conductivity of QPVA-Based Membrane in Passive Alkaline Direct Ethanol Fuel Cells

Abstract Passive alkaline–direct ethanol fuel cells (alkaline–DEFCs) appear to be suitable for producing sustainable energy for portable devices. However, ethanol crossover is a major challenge for passive alkaline–DEFC systems. This study investigated the performance of a crosslinked quaternized po...

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Main Authors: Z. Zakaria, S. K. Kamarudin, S. N. Timmiati
Format: Article
Language:English
Published: SpringerOpen 2019-01-01
Series:Nanoscale Research Letters
Subjects:
Online Access:http://link.springer.com/article/10.1186/s11671-018-2836-3
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author Z. Zakaria
S. K. Kamarudin
S. N. Timmiati
author_facet Z. Zakaria
S. K. Kamarudin
S. N. Timmiati
author_sort Z. Zakaria
collection DOAJ
description Abstract Passive alkaline–direct ethanol fuel cells (alkaline–DEFCs) appear to be suitable for producing sustainable energy for portable devices. However, ethanol crossover is a major challenge for passive alkaline–DEFC systems. This study investigated the performance of a crosslinked quaternized poly (vinyl alcohol)/graphene oxide (QPVA/GO) composite membrane to reduce ethanol permeability, leading in enhancement of passive alkaline–DEFC performance. The chemical and physical structure, morphology, ethanol uptake and permeability, ion exchange capacity, water uptake, and ionic conductivity of the composite membranes were characterized and measured to evaluate their applicability in fuel cells. The transport properties of the membrane were affected by GO loading, with an optimal loading of 15 wt.% and doped with 1 M of KOH showing the lowest ethanol permeability (1.49 × 10−7 cm2 s−1 and 3.65 × 10−7 cm2 s−1 at 30 °C and 60 °C, respectively) and the highest ionic conductivity (1.74 × 10−2 S cm−1 and 6.24 × 10−2 S cm−1 at 30 °C and 60 °C, respectively). In the passive alkaline–DEFCs, the maximum power density was 9.1 mW cm−2, which is higher than commercial Nafion 117/KOH (7.68 mW cm−2) at 30 °C with a 2 M ethanol + 2 M KOH solution. For the 60 °C, the maximum power density of composite membrane achieved was 11.4 mW cm−2.
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spelling doaj.art-2ac60961f6c54e0db6f1792d3533bae52023-09-03T02:21:46ZengSpringerOpenNanoscale Research Letters1931-75731556-276X2019-01-0114111810.1186/s11671-018-2836-3Influence of Graphene Oxide on the Ethanol Permeability and Ionic Conductivity of QPVA-Based Membrane in Passive Alkaline Direct Ethanol Fuel CellsZ. Zakaria0S. K. Kamarudin1S. N. Timmiati2Fuel Cell Institute, Universiti Kebangsaan MalaysiaFuel Cell Institute, Universiti Kebangsaan MalaysiaFuel Cell Institute, Universiti Kebangsaan MalaysiaAbstract Passive alkaline–direct ethanol fuel cells (alkaline–DEFCs) appear to be suitable for producing sustainable energy for portable devices. However, ethanol crossover is a major challenge for passive alkaline–DEFC systems. This study investigated the performance of a crosslinked quaternized poly (vinyl alcohol)/graphene oxide (QPVA/GO) composite membrane to reduce ethanol permeability, leading in enhancement of passive alkaline–DEFC performance. The chemical and physical structure, morphology, ethanol uptake and permeability, ion exchange capacity, water uptake, and ionic conductivity of the composite membranes were characterized and measured to evaluate their applicability in fuel cells. The transport properties of the membrane were affected by GO loading, with an optimal loading of 15 wt.% and doped with 1 M of KOH showing the lowest ethanol permeability (1.49 × 10−7 cm2 s−1 and 3.65 × 10−7 cm2 s−1 at 30 °C and 60 °C, respectively) and the highest ionic conductivity (1.74 × 10−2 S cm−1 and 6.24 × 10−2 S cm−1 at 30 °C and 60 °C, respectively). In the passive alkaline–DEFCs, the maximum power density was 9.1 mW cm−2, which is higher than commercial Nafion 117/KOH (7.68 mW cm−2) at 30 °C with a 2 M ethanol + 2 M KOH solution. For the 60 °C, the maximum power density of composite membrane achieved was 11.4 mW cm−2.http://link.springer.com/article/10.1186/s11671-018-2836-3Passive alkaline–DEFCsGraphene oxideQuaternized poly (vinyl alcohol)
spellingShingle Z. Zakaria
S. K. Kamarudin
S. N. Timmiati
Influence of Graphene Oxide on the Ethanol Permeability and Ionic Conductivity of QPVA-Based Membrane in Passive Alkaline Direct Ethanol Fuel Cells
Nanoscale Research Letters
Passive alkaline–DEFCs
Graphene oxide
Quaternized poly (vinyl alcohol)
title Influence of Graphene Oxide on the Ethanol Permeability and Ionic Conductivity of QPVA-Based Membrane in Passive Alkaline Direct Ethanol Fuel Cells
title_full Influence of Graphene Oxide on the Ethanol Permeability and Ionic Conductivity of QPVA-Based Membrane in Passive Alkaline Direct Ethanol Fuel Cells
title_fullStr Influence of Graphene Oxide on the Ethanol Permeability and Ionic Conductivity of QPVA-Based Membrane in Passive Alkaline Direct Ethanol Fuel Cells
title_full_unstemmed Influence of Graphene Oxide on the Ethanol Permeability and Ionic Conductivity of QPVA-Based Membrane in Passive Alkaline Direct Ethanol Fuel Cells
title_short Influence of Graphene Oxide on the Ethanol Permeability and Ionic Conductivity of QPVA-Based Membrane in Passive Alkaline Direct Ethanol Fuel Cells
title_sort influence of graphene oxide on the ethanol permeability and ionic conductivity of qpva based membrane in passive alkaline direct ethanol fuel cells
topic Passive alkaline–DEFCs
Graphene oxide
Quaternized poly (vinyl alcohol)
url http://link.springer.com/article/10.1186/s11671-018-2836-3
work_keys_str_mv AT zzakaria influenceofgrapheneoxideontheethanolpermeabilityandionicconductivityofqpvabasedmembraneinpassivealkalinedirectethanolfuelcells
AT skkamarudin influenceofgrapheneoxideontheethanolpermeabilityandionicconductivityofqpvabasedmembraneinpassivealkalinedirectethanolfuelcells
AT sntimmiati influenceofgrapheneoxideontheethanolpermeabilityandionicconductivityofqpvabasedmembraneinpassivealkalinedirectethanolfuelcells