BUBBLE-AFM - Molecular processes at electrode/electrolyte interfaces during water electrolysis: from solvent restructuring to nanobubble nucleation
J-67
Doctorat
- Disciplines
- Laboratoire
- Institution d'accueil
Description
PRISM programmeThe PRISM (PhD Research Programme for International Training in Sustainable Soft Matter) programme has launched its first call for applications, offering up to 14 fully funded PhD fellowships starting from 1 March 2027 at Paris Sciences & Lettres (PSL) University. The programme trains researchers to address ecological transition challenges through sustainable soft matter science, with projects focused on eco-friendly chemical processes, circular economy, renewable energies, and carbon capture, storage, and valorisation. Co-funded by the European Union under Horizon Europe MSCA COFUND (Grant Agreement 101261637) and partner institutions, PRISM provides interdisciplinary, international, and intersectoral training, including mobility opportunities, secondments, and courses in sustainability, innovation, entrepreneurship, career development, and transferable skills.
Applications must be submitted only via the PRISM website (https://prism.psl.eu/en/) by 31 October 2026 (23:59 Paris time).
The PhD project
The transition toward sustainable energy systems critically relies on the development of efficient water electrolysis technologies for green hydrogen production. However, the performance of electrolyzers is strongly limited by the formation, growth, and adhesion of gas bubbles at electrode surfaces, which block active sites, increase local resistance, and alter mass transport near the interface. Despite extensive studies, the fundamental mechanisms governing the earliest stages of bubble nucleation, occurring at the nanometric scale, remain poorly understood due to the lack of suitable in situ characterization techniques.
This PhD proposal aims to address this major knowledge gap by developing an innovative experimental approach combining electrochemical control with in situ Atomic Force Microscopy (AFM) in liquid environments. Building on recent advances and the installation of a new electrochemical AFM platform within the ESPCI premises, the project will provide unprecedented access to molecular-scale processes occurring at electrode/electrolyte interfaces during water electrolysis. In particular, it seeks to elucidate the transition from solvent restructuring under applied potential to gas supersaturation and ultimately nanobubble nucleation.
The scientific rationale rests on the hypothesis that bubble nucleation is a metastable process governed by a subtle interplay between local surface properties (chemistry, wettability, roughness, defects) and electrochemical conditions. To get novel fundamental insights into this process, we will first focus on model electrodes (e.g., graphite). We will rely on high-speed and high-resolution dynamic force spectroscopy of near-surface structural and solvation forces, which will provide insight into the early stages of bubble nucleation — from solvent restructuring under electrochemical potential, to interfacial gas saturation, to bubble nucleation and growth kinetics. We will then extend our investigations towards more realistic electrodes, using high-resolution imaging of surface nanobubbles to correlate local bubble nucleation with surface chemistry (hydrophilicity/hydrophobicity balance), topography, and defects. Together, these measurements will help identify nucleation pathways and clarify the role of surface heterogeneities in triggering bubble formation.
A second objective will then be to establish quantitative correlations between these nanoscale observations and macroscopic electrochemical performance. By systematically varying electrode materials and surface treatments, we will aim to determine how local interfacial phenomena influence global efficiency, thereby providing guidelines for the rational design of improved electrodes with reduced bubble-related losses.
Overall, this PhD project is highly innovative in its ability to access previously inaccessible interfacial phenomena at the nanoscale and to bridge the gap between interfacial soft matter, solid/liquid interfaces, fundamental surface science and applied electrochemical engineering. Its expected outcomes will contribute to both fundamental understanding and technological advances in hydrogen production, positioning it at the forefront of research on energy-related interfacial processes.
References
[1] Kempler, P. A., Coridan, R. H., & Luo, L. (2024). Gas evolution in water electrolysis. Chemical reviews, 124(19), 10964-11007.
[2] Zhang, L., Zhang, Y., Zhang, X., Li, Z., Shen, G., Ye, M., ... & Hu, J. (2006). Electrochemically controlled formation and growth of hydrogen nanobubbles. Langmuir, 22(19), 8109-8113.
[3] Utsunomiya, T., Yokota, Y., Enoki, T., & Fukui, K. I. (2014). Potential-dependent hydration structures at aqueous solution/graphite interfaces by electrochemical frequency modulation atomic force microscopy. Chemical Communications, 50(98), 15537-15540.
[4] Martin-Jimenez, D., Chacon, E., Tarazona, P., & Garcia, R. (2016). Atomically resolved threedimensional structures of electrolyte aqueous solutions near a solid surface. Nature communications, 7(1), 12164.
[5] Comtet, Jean, et al. "Nanoscale capillary freezing of ionic liquids confined between metallic interfaces and the role of electronic screening." Nature materials 16.6 (2017): 634-639.
3i dimensions
INTERNATIONAL: The project has a strong international dimension through established and planned collaborations with leading experts in interfacial science and advanced AFM, providing complementary expertise in confined electrolyte studies under surface-force apparatus, molecular-scale characterization of solid–liquid interfaces, and interfacial liquid structuring. The compulsory international secondment (minimum one month) will ideally take place at one of these partner laboratories, enabling knowledge transfer, access to complementary instrumentation, and strengthening the international impact and visibility of the project.
INTERSECTORAL: The project has a strong intersectoral potential through its direct relevance to industrial challenges in hydrogen production and surface engineering. A collaboration or secondment with an industrial partner such as TotalEnergies or Saint-Gobain will be sought to investigate the role of engineered surface coatings and functional interfaces on gas bubble nucleation, growth and detachment during water electrolysis. Initial contacts have already been established with both companies, providing a solid basis for future interactions, although no formal partnership has yet been implemented. Such a collaboration would facilitate the transfer of fundamental nanoscale insights toward the optimization of industrial electrode materials, while exposing the PhD candidate to innovation-driven research and technology development in a non-academic environment.
INTERDISCIPLINARY: The project is highly interdisciplinary, bridging together concepts in interfacial physics, soft matter, electrochemistry, surface science and electrocatalysis. It combines advanced scanning probe microscopy, molecular-scale characterization of solid–liquid interfaces, electrochemical measurements and materials engineering to investigate gas bubble nucleation during water electrolysis. By linking nanoscale interfacial phenomena to macroscopic electrochemical performance, the project integrates fundamental physics and physical chemistry with challenges in energy conversion and materials design. This cross-disciplinary approach will provide the PhD candidate with broad expertise spanning experimental nanoscience, electrochemistry, surface engineering and data analysis, while fostering interactions between complementary scientific communities.
Salary
The PRISM programme offers a competitive salary above the national average for PhD candidates in France to attract and support excellent researchers.
Doctoral candidates will receive an approximate net monthly salary of €2,200, with additional family and mobility allowances available for eligible fellows.
The salary is subject to French income tax, with the exception of the family and mobility allowances. Depending on the candidate's individual tax situation, income tax may represent approximately 2–5% of the net salary and is levied by the French tax authorities independently of the employer.
To ensure consistent management and equal employment conditions across the programme, all PRISM doctoral candidates will be employed by ESPCI Paris, regardless of the host laboratory where their research is carried out.
Employer’s benefits
Remote working opportunities, access to sports and leisure activities, free access to public Paris city council’s swimming pools, access to CROUS canteen, scientific campus in central Paris, professional development programs, well-being workshops, social benefits through CNAS, partial health insurance support, and 75% support for sustainable mobility.
Offre financée
- Type de financement
- Contrat Européen
Dates
Date limite de candidature 31/10/26
Date de création11/08/26
Langues
Niveau de français requis
Niveau d'anglais requis
Divers
Frais de scolarité annuels € / an
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