PhD in Operando X-ray Characterization of Catalytic Interfaces for Chemical Hydrogen Storage
Max Planck Institute to Forschungszentrum Jülich
The Institute for a Sustainable Hydrogen Economy (IHE) develops the scientific foundations and technologies needed to store, transport, and use renewable hydrogen safely and efficiently. Within IHE, the division Catalytic Interfaces for Chemical Hydrogen Storage (IHE-1) investigates elementary reaction and degradation processes at catalytically active interfaces, from the atomic to the mesoscale. The team “Dynamic non-equilibrium processes” focuses on dynamic processes that take place out of equilibrium conditions. In particular, we are interested in resolving the molecular reaction mechanisms (under near-reaction conditions). This involves recording “molecular movies”, in which experimentally atomically resolved motion pictures of the reactions are recorded, including the structural and chemical identification of the intermediate states and transition states.
Your Job
Operando and time-resolved investigation of small-molecule hydrogen-carrier conversion, with an initial emphasis on ammonia decomposition and formic-acid decomposition. The scientific objective is to resolve active-site formation, interface processes, reaction intermediates, structural evolution, deactivation, and regeneration, and to translate this understanding into rational design principles for high-performance and durable catalysts.
- Plan and conduct research on the catalytic conversion of chemical hydrogen carriers, with scientific guidance from the supervisory team.
- Apply and further develop in situ and operando X-ray spectroscopy approaches for probing the bulk, surface and interface regions under reaction conditions, depending on the scientific question.
- Contribute to the development and operation of ex situ/in situ/operando reaction cells and sample environments.
- Participate in synchrotron measurement campaigns and, where scientifically appropriate, experiments at XFEL facilities.
- Analyze experimental data and develop or adapt data-analysis workflows, including scripting in Python or comparable tools.
- Combine spectroscopic information with catalytic performance data and, where useful, complementary methods such as microscopy, X-ray scattering/reflection, vibrational spectroscopy, or modelling.
- Prepare beamtime proposals, publish results in peer-reviewed journals, and present the work at domestic & international scientific events.
- Work closely with colleagues across IHE, Forschungszentrum Jülich, partner universities, and large-scale light source facilities.
Your Profile
- A completed Master’s degree (or equivalent) in chemistry, physics, chemical engineering, materials science, or a closely related discipline (essential).
- Strong interest in heterogeneous catalysis, surface/interface science, hydrogen chemistry, and advanced characterization methods (essential).
- A strong motivation to learn in situ/operando X-ray methods and willingness to carry out experiments at light source facilities that may involve travel and non-standard working hours (essential).
- Good communication and teamwork skills in an interdisciplinary and international research environment (essential).
- Very good command of written and spoken English with extensive vocabulary is required (at least B2 level according to the CEFR), ideally supported by a certificate confirming the language level. Knowledge of the German language is not mandatory but certainly appreciated.
- Research experience in at least one relevant area, for example inorganic/materials chemistry, heterogeneous catalysis, surface science, reaction engineering, or spectroscopy (desirable).
- Practical experience with X-ray spectroscopy, operando characterization, catalytic testing, or synchrotron experiments (desirable).
- Basic experience in scientific data analysis and programming (desirable).
Application deadline: 20 October 2026
For more information and to apply visit https://recruiting.fz-juelich.de/jobposting/e5db74a4811ce95244b962d5ad88b8c3981c9b440