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ETH Zürich is seeking a PhD candidate to engage in pioneering research at the intersection of physics and materials science. The candidate will work on high-resolution studies of microstructural evolution under ion irradiation, utilizing advanced TEM techniques.
The ideal applicant will hold a Master's degree, possess a robust background in solid-state physics, and demonstrate proficiency in research methodologies related to materials sciences. This position offers a collaborative environment and opportunities for professional development in a leading university setting.
ETH Zürich is one of the world’s leading universities, specializing in science and technology. It is renowned for its excellent education, its cutting‑edge fundamental research and its efforts to put new knowledge and innovations directly into practice. The Laboratory of Metal Physics and Technology (LMPT), part of the Department of Materials at ETH Zürich, conducts research and teaching in areas ranging from basic science to technology, mostly in metal‑related areas. It is led by Jörg F. Löffler and brings together physicists, materials scientists, chemists and biomedical engineers from across the world. It creates novel materials and explores emerging phenomena in metal physics and technology via detailed materials analysis and modeling.
The Ernst Ruska‑Centre for Microscopy and Spectroscopy with Electrons (ER‑C) at the Jülich Research Center (FZ Jülich) hosts one of the world’s most advanced transmission electron microscopy (TEM) facilities. It houses an unparalleled collection of state‑of‑the‑art instruments, which enable ultrahigh‑resolution studies of materials and devices with unparalleled spatial, energy and temporal resolution.
Are you ready to dive into Materials Science? We are looking for a PhD candidate to work at ER‑C (Forschungszentrum Jülich) and LMPT (ETH Zürich) to investigate high‑resolution, real‑time microstructural evolution in materials under ion irradiation and thus to understand in detail the performance of materials in e.g. future fusion reactors or particle accelerators and in general to understand materials driven far out from equilibrium. In situ TEM and Dynamic TEM (DTEM) are powerful techniques that can be used to reveal microstructure–property relationships in materials under operational conditions, which remains largely unexplored for ion‑irradiated materials. Despite decades of research, the fundamental mechanisms governing the sub‑nanosecond displacement cascade evolution, and the resulting defect dynamics and irradiation‑induced phase transitions are incompletely understood, especially in the presence of realistic external stimuli.
The successful candidate will utilize advanced analytical and high‑resolution transmission electron microscopy (TEM)—including collaborations at the ER‑C—to directly observe structural changes at the atomic level. Fast scanning calorimetry and synchrotron radiation techniques will be employed to probe the kinetics and thermodynamics of phase transformations. The project will explore how temperature, mechanical strain, and irradiation induce changes in atomic structure and dynamics. The influence of atomic arrangement on stability, transformation kinetics, and crystallization will be systematically investigated.
A Master’s degree in physics, materials science, or a related discipline, including:
Additional assets (advantageous but not a requirement):
ETH Zurich encourages an inclusive culture. We promote equality of opportunity, value diversity and nurture a working and learning environment in which the rights and dignity of all our staff and students are respected. Visit our Equal Opportunities and Diversity website to find out how we ensure a fair and open environment that allows everyone to grow and flourish. Sustainability is a core value for us – we are consistently working towards a climate‑neutral future.
ETH Zurich is one of the world’s leading universities specialising in science and technology. We are renowned for our excellent education, cutting‑edge fundamental research and direct transfer of new knowledge into society. Over 30,000 people from more than 120 countries find our university to be a place that promotes independent thinking and an environment that inspires excellence. Located in the heart of Europe, yet forging connections all over the world, we work together to develop solutions for the global challenges of today and tomorrow.