HZB researcher follows the call to the Hebrew University in Jerusalem

Ronen Gottesman has developed complex metal-oxide photoelectrodes for the production of "green" hydrogen at the HZB Institute for Solar Fuels.

Ronen Gottesman has developed complex metal-oxide photoelectrodes for the production of "green" hydrogen at the HZB Institute for Solar Fuels. © arö/HZB

Ronen Gottesman has been a scientist at the HZB Institute for Solar Fuels for the past five years, establishing the pulsed laser deposition team and developing novel complex metal-oxide semiconducting lightabsorbers for photoelectrochemical water splitting to produce "green" hydrogen. Now he is following a call to the Institute of Chemistry at the Hebrew University of Jerusalem in Israel (HUJI), where he will lead his own research group. 

During his doctorate at Bar Ilan University in Tel Aviv, Ronen Gottesman worked on perovskite-based solar cells after an internship in South-Korea at the lab of Prof. Nam-Gyu Park (one of the co-inventors of perovskite solar cells). Therefore, he was one of the first students in Israel to work on these fantastic semiconductor materials. He remained faithful to the topic of solar energy conversion in the broadest sense when he joined the HZB Institute for Solar Fuels as a materials scientist in 2017. Here, the focus is to develop new materials and devices for producing chemical fuels from cheap and abundant resources, such as water and CO2, using sunlight.

At first, Gottesman recalls that he had to overcome a particular scientific-language barrier when switching from the field of photovoltaics to photoelectrochemistry, as some technical terms are somewhat different in their meaning. In his five years at HZB, he has built up a kind of witches' kitchen for photoelectrodes using the pulsed laser deposition system. He refers to it as combinatorial synthesis that allows to systematically synthesize various compositions of transition-metal oxides to identify the mixture with the best properties.

Throughout his work at HZB, the head of the Institute for Solar Fuels, Roel van de Krol, has mentored Gottesman and encouraged his approach to change the perspective when needed;  From a focus on details to the bird's eye view. Both perspectives are essential: meaningful scientific achievements cannot be made without focusing on intricate details, and strategic decisions are difficult to take without seeing the big picture.

With his appointment at the Hebrew University in Jerusalem, Ronen Gottesman has achieved an important career goal: a professorship and even more responsibility. He is now excited to start his research group at HUJI, where he will use combinatorial science to further explore his ideas on the non-equilibrium growth of semiconducting heteroanionic functional thin films, particularly oxynitride perovskites, for solar energy conversion.

arö

  • Copy link

You might also be interested in

  • Green hydrogen with PEC electrolysers: New insights into transport processes
    Science Highlight
    21.07.2026
    Green hydrogen with PEC electrolysers: New insights into transport processes
    One method of storing solar energy is to use PEC electrolysers to produce hydrogen. However, scaling up this technology remains challenging. Now, a team at the HZB Institute for Solar Fuels has used 2D fluorescence imaging and particle velocimetry to observe the movement of ions and dissolved gases within the electrolyte during electrolysis. These new insights may prove useful in the development of larger PEC electrolysers.
  • From Colombia to Berlin: Finding My Way in a New World
    Blog
    15.07.2026
    From Colombia to Berlin: Finding My Way in a New World
    It was almost 11 p.m. when I arrived in Berlin. After a long journey from Colombia, all I wanted was to get to my accommodation, take a shower, and finally sleep.

    Instead, I missed my train. Thinking it would follow the same route as the previous one as it would in my hometown of Medellín I confidently boarded the next train. About twenty minutes later, I realized something was wrong. I was heading in the wrong direction.

    As if that was not enough, my phone battery was almost empty. Suddenly, I found myself alone in a city I had never visited before, late at night, speaking a language I did not understand, with no idea how to get back.

    This was not how I had imagined the beginning of my first international trip....

  • Magnetic field during catalyst synthesis triples ammonia yield
    Science Highlight
    01.06.2026
    Magnetic field during catalyst synthesis triples ammonia yield
    Applying an external magnetic field during the synthesis of CoFe₂O₄ electrocatalysts triples the ammonia yield during electrocatalytic conversion. The magnetic field alters the surface states of the spinel oxide thin films, making catalytically active sites more accessible. In the journal 'Advanced Functional Materials', a team led by Marcel Risch at HZB and Sanjay Mathur at University of Cologne demonstrates a scalable strategy for developing next-generation electrocatalysts for efficient and sustainable chemical production.