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Join TU Delft and help design hydrogen-resistant circular steels as a PhD researcher. You will unravel atomistic HE mechanisms using DFT and machine-learned interatomic potentials, collaborating with Tata Steel and an international team.
The CIRHY project, funded by NWO, spans six years and combines quantum modelling with multiscale simulations to create sustainable steels for hydrogen environments.
Delft University of Technology (TU Delft)
Organisation/Company Delft University of Technology (TU Delft) Research Field Engineering » Materials engineering Researcher Profile First Stage Researcher (R1) Application Deadline 30 Oct 2026 - 22:59 (UTC) Country Netherlands Type of Contract Permanent Job Status Not Applicable Hours Per Week 38.0 Is the job funded through the EU Research Framework Programme? Not funded by a EU programme Is the Job related to staff position within a Research Infrastructure? No
Join TU Delft and help design hydrogen-resistant steels for a sustainable energy future. As a PhD researcher, you will unravel the atomic-scale mechanisms of hydrogen embrittlement in compositionally complex recycled steels, using density functional theory and machine-learned interatomic potentials, in close collaboration with leading academic partners and Tata Steel.
At TU Delft, you will contribute to a transformative research initiative focused on enabling the transition to a hydrogen-based energy system. This position is within the project "Circularity as Opportunity: Engineering Hydrogen-Resistant Circular Steels (CIRHY)" which is a 6-year research and innovation project developing next-generation circular steels that can safely operate in hydrogen environments. By combining advanced experiments with multiscale modelling, CIRHY enables reliable, sustainable steels for future infrastructure and industry. The project was granted by the Dutch national funding agency NWO in 2025.
Understanding hydrogen-material interactions at the atomic scale remains one of the most complex and urgent challenges in the transition to a hydrogen-based energy system. Since the first discovery of the phenomenon in 1875, several hypotheses have been proposed about the mechanistic origin of hydrogen embrittlement (HE). Atomistic modelling can play a crucial role in verifying, characterizing and quantifying the HE mechanisms, since hydrogen is challenging to detect experimentally. Machine learning potentials can overcome typical bottlenecks of empirical potentials for simulating dislocations, cracks and hydrogen diffusion near precipitates embedded in ferritic iron. While considerable progress has been made in simulating hydrogen behaviour in the presence of defects (e.g., grain boundaries) in iron, the effects of hydrogen in compositionally complex recycled steels remain poorly understood.
Within this position, you will investigate the atomistic mechanisms underlying hydrogen embrittlement (HE) in circular steels, with a particular focus on the role of tramp elements at experimentally informed microstructural features. You will combine first-principles modelling and machine-learning approaches to develop predictive simulations of hydrogen behaviour in compositionally complex Fe alloys. Working closely with Tata Steel and an interdisciplinary academic team, your research will contribute to the development of more hydrogen-embrittlement-resistant circular steels.
In this role, you will develop fundamental insights into the atomistic mechanisms governing hydrogen embrittlement in compositionally complex circular steels. As a PhD researcher, you will:
You will be part of Team Dey within the Computational Materials Science section at TU Delft. This team focuses on atomistic simulations to investigate materials for sustainable energy, with proven expertise in hydrogen embrittlement, hydrogen storage and the behaviour of carbon-based materials such as graphene. Your project on the atomistic mechanisms of hydrogen embrittlement in circular steels aligns perfectly with the team's broader interest in metal-impurity interactions, interfacial phenomena and its commitment to computation-guided design for a sustainable future.
You will collaborate closely with researchers from a broad consortium, including academic partners from the University of Groningen, Eindhoven University of Technology, University of Twente, KU Leuven and the MPI for Sustainable Materials, as well as the industrial partner Tata Steel. The project is embedded within the M2i framework.The Computational Materials Science section offers a collaborative and intellectually stimulating environment, where researchers work across disciplines and scales, with ample opportunities for scientific development and impact.
We are looking for a self-motivated researcher to help develop atomistic insights and simulation tools for enabling hydrogen-resistant circular steels. You are independent but also a good team player and are willing to cooperate closely with other researchers and our industry partners.
Furthermore, you meet the following requirements:
Join this unique programme, where you can apply your technical knowledge to collaborate with leading universities, research institutes and a major steel industry partner. Imagine contributing to the fundamental understanding needed to design steels that are resistant to hydrogen embrittlement, thereby enabling the safe and widespread use of hydrogen as a clean energy carrier. You can help make an impact on a more sustainable future.
Working at TU Delft means contributing to solutions that really make a difference.
For over 180 years, we have been training engineers who make an impact worldwide in companies, government bodies, or as entrepreneurs. Our alumni turn knowledge into concrete solutions for the challenges of today and tomorrow. These challenges are changing rapidly. That is why we focus on themes such as energy, climate, digitalisation, artificial intelligence (AI), and smart mobility every day. Our education and research are directly aligned with what society needs now and in the future.
At TU Delft, our people make the difference. With their knowledge and curiosity, our staff provide a high-quality education and conduct pioneering research that extends beyond the campus. You will have the opportunity to take the initiative, work with others, and grow as a professional. Working at TU Delft means join an international community of professionals and students. Together, we create knowledge, innovations, and solutions that help move the world forward.
From chip to ship. From machine to human being. From idea to solution. Driven by a deep-rooted desire to understand our environment and discover its underlying mechanisms, research and education at the ME faculty focusses on fundamental understanding, design, production including application and product improvement, materials, processes and (mechanical) systems.
ME is a dynamic and innovative faculty with high-tech lab facilities and international reach. It’s a large faculty but also versatile, so we can often make unique connections by combining different disciplines. This is reflected in ME’s outstanding, state-of-the-art education, which trains students to become responsible and socially engaged engineers and scientists. We translate our knowledge and insights into solutions to societal issues, contributing to a sustainable society and to the development of prosperity and well-being. That is what unites us in pioneering research, inspiring education and (inter)national cooperation.
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