Travail de fin d'études en chimie et bio-industries : Influence of Impurities on Anion Exchange Membrane Water Electrolysis.
Khan, Muhammad Afaq
Promoteur(s) :
Richel, Aurore
Date de soutenance : 25-jui-2026 • URL permanente : http://hdl.handle.net/2268.2/26058
Détails
| Titre : | Travail de fin d'études en chimie et bio-industries : Influence of Impurities on Anion Exchange Membrane Water Electrolysis. |
| Titre traduit : | [fr] Influence des impuretés sur l’électrolyse de l’eau avec membrane échangeuse d’anions |
| Auteur : | Khan, Muhammad Afaq
|
| Date de soutenance : | 25-jui-2026 |
| Promoteur(s) : | Richel, Aurore
|
| Membre(s) du jury : | Landaud, Sophie
Dulova, Niina Donker, Ellis |
| Langue : | Anglais |
| Nombre de pages : | 92 |
| Mots-clés : | [en] AEMWEs [en] AEM [en] PiperION [en] Green Hydrogen [en] Hydrogen Peroxide [en] Membrane Degradation |
| Discipline(s) : | Ingénierie, informatique & technologie > Ingénierie chimique |
| Organisme(s) subsidiant(s) : | Erasmus Plus TNO |
| Centre(s) de recherche : | Sustainable transition and Industrial process |
| Intitulé du projet de recherche : | Low Temperature Water Electrolysis for Green Hydrogen |
| Public cible : | Chercheurs Professionnels du domaine Etudiants |
| Institution(s) : | Université de Liège, Liège, Belgique |
| Diplôme : | Master en bioingénieur : chimie et bioindustries, à finalité spécialisée |
| Faculté : | Mémoires de la Gembloux Agro-Bio Tech (GxABT) |
Résumé
[en] Anion exchange membrane water electrolysis (AEMWE) is one of the key and
emerging low-temperature technologies for sustainable and green hydrogen
production. However, the long-term durability of anion exchange membrane (AEM)
poses a significant challenge and remains a bottleneck in the way of widespread
commercial deployment of AEMWEs. Throughout the course of this study, PiperION
degradation was systematically investigated under in-situ electrochemical
operation, ex-situ oxidative environment and accelerated stressing conditions with
a particular focus on the Fenton and Fenton-like induced degradation mechanism
in alkaline media.
Electrochemical experiments validated the formation of in-situ hydrogen peroxide
in alkaline media, and their concentration was found to be strongly dependent on
the availability of oxygen during electrochemical operations. At the same time,
trace metal impurities originating from KOH pallets, enabling in-situ electro-Fenton
reactions induced highly reactive species. These species lead to attacking the
piperidinium cationic head group and terphenyl PiperION backbone, causing severe
structure and chemical degradation.
To further elucidate the degradation mechanism, ex-situ controlled oxidative tests
with varying concentration (1–3 wt% H₂O₂ with 1–4 ppm iron impurities) were
performed under Fenton and Fenton-like conditions. To isolate the oxidative effect,
time dependent thermally accelerated (60–80 °C) and alkaline exposure aging (1
3 M KOH) were individually performed. Result indicates that presence of iron
impurity significantly accelerates degradation mechanism by catalyzing H₂O₂
induces radical species. Comparatively, aging experiments show slower and
controlled degradation behaviors.
The structural degradation mechanism is comprehensively characterized by using
advanced analytical, chemical and physical techniques, indicating a systematic loss
of functional groups, degradation of quaternary ammonium, alteration in hydration
behavior, and decline in structure stability and integrity. Quantitative analysis
further confirmed the progressive loss of quaternary cationic sites and hydrophilic
functionalities. Overall, this study highlights controlling oxygen purging, formation
of peroxide and the key impurities that can enhance the AEM durability during
AEMWEs.
Fichier(s)
Document(s)
Khan Muhammad Afaq_MSc thesis ULiege_Bioceb _2026 .pdf
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Annexe(s)
Khan_Muhammad Afaq_ MSC Thesis (BIOCEB) Uliege _ Annexes _ 2026 -.pdf
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Taille: 1.74 MB
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