PhD Amran Al-Ashouri: Doubling down for the energy transition

The award ceremony took place on 28 April 2022 during the Helmholtz Spring Meeting in Berlin. (from left to right: President of the Helmholtz Association Otmar D. Wiestler, award winner Amran Al-Ashouri and Thomas Sattelberger, State Secretary at the BMBF)

The award ceremony took place on 28 April 2022 during the Helmholtz Spring Meeting in Berlin. (from left to right: President of the Helmholtz Association Otmar D. Wiestler, award winner Amran Al-Ashouri and Thomas Sattelberger, State Secretary at the BMBF) © Helmholtz-Gemeinschaft / Marco Urban

Climate change has Amran Al-Ashouri concerned. As a physicist, he knows how urgently and quickly measures need to be taken to limit the global temperature increase to between 1.5 and 2 degrees Celsius. In his private life, the 29-year-old scientist is accordingly a member of the association “climactivity”, which aims to educate as many people as possible about important matters in climate protection.

At Helmholtz-Zentrum Berlin, he is researching ways to significantly improve the efficiency of solar cells, which are extremely important for Germany’s planned energy transition. And he has been extraordinarily successful: in Steve Albrecht’s group, his doctoral thesis played a central role in the development of a tandem solar cell that brought the world record in this field to Berlin in 2020 for an efficiency of more than 29 percent. On 28 April 2022, Amran Al-Ashouri will be awarded the Helmholtz Doctoral Prize for mission-oriented research for this work.

The physicist describes his now award-winning doctoral thesis matter-of-factly and very modestly: “Most of it went wrong”. That makes him no different from the many thousands of others who find themselves becoming frustrated more than once during their doctorate, only to draw from their failures the decisive conclusions that ultimately lead to their success. Although, it is still rather rare for this to involve a world record that improves the odds in the fight against climate change.

Conventional silicon solar cells are reaching their limits in this fight; they have barely more than about 24 percent efficiency in them. Tandem solar cells, at least in theory, ought to be considerably more efficient. A tandem cell is one that combines a silicon solar cell, which generates electricity primarily from the infrared light from the sun, with a completely different type of cell made from a perovskite absorber that uses the higher-energy light in the visible spectrum.

The only problem is that, in practice, there are considerable losses when the two solar cell types are combined. Guest researcher Artiom Magomedov from Lithuania postulated that these losses could be prevented by adding an ultra-thin intermediate layer just one molecule thick. In addition, he reasoned that the ultra-thin layer should be self-organising because each of its molecules contains a blueprint for the monolayer. However, the success hoped for did not materialise at first; the efficiency of these tandem solar cells was initially worse than that of the top-performing conventional cells.

The solar cells only improved after Amran Al-Ashouri specifically investigated how the chemical blueprint of the individual molecules influences the formation of the ultra-thin layer. “The simpler the molecules are structured, the better the monolayer forms,” the physicist says, summarising the result of long, methodical experiments. Now, with the appropriate type of molecules, the monolayer forms within seconds, even on very irregular substrates.

The crucial factor for their efficiency was the speed at which the particles generated by the separation of electrical charges travel out from the perovskite solar cell. The negatively charged electrons do so in a few billionths of a second, while the simultaneously created, positively charged “holes” initially took hundreds to thousands of times longer. However, with the new molecule design, the holes are now only ten to fifty times slower than the electrons, and have the added benefit of keeping the solar cell much more stable. Also, with conventional materials, around 99 percent of all holes would be lost by producing heat and no electrical current. The losses in the new monolayer, in contrast, drop to only one hundredth. “This enabled us to increase the efficiency by two to three percentage points and thus break the world record,” Amran Al-Ashouri explains.

On top of all this, the developments at HZB can be quickly scaled up from the tiny laboratory scale to the industrial scale needed to become a used technology. This means the tandem cells could be market-ready in just a few years. It is no surprise, therefore, that Amran Al-Ashouri is now set to receive the Helmholtz Young Investigator Award.

rk

  • Copy link

You might also be interested in

  • New instrument at BESSY II: The OÆSE endstation in EMIL
    Science Highlight
    23.04.2025
    New instrument at BESSY II: The OÆSE endstation in EMIL
    A new instrument is now available at BESSY II for investigating catalyst materials, battery electrodes and other energy devices under operating conditions: the Operando Absorption and Emission Spectroscopy on EMIL (OÆSE) endstation in the Energy Materials In-situ Laboratory Berlin (EMIL). A team led by Raul Garcia-Diez and Marcus Bär showcases the instrument’s capabilities via a proof-of-concept study on electrodeposited copper.
  • Solar cells on moon glass for a future base on the moon
    Science Highlight
    07.04.2025
    Solar cells on moon glass for a future base on the moon
    Future settlements on the moon will need energy, which could be supplied by photovoltaics. However, launching material into space is expensive – transporting one kilogram to the moon costs one million euros. But there are also resources on the moon that can be used. A research team led by Dr. Felix Lang of the University of Potsdam and Dr. Stefan Linke of the Technical University of Berlin have now produced the required glass from ‘moon dust’ (regolith) and coated it with perovskite. This could save up to 99 percent of the weight needed to produce PV modules on the moon. The team tested the radiation tolerance of the solar cells at the proton accelerator of the HZB.
  • Optical innovations for solar modules - which are the most promising?
    Science Highlight
    28.03.2025
    Optical innovations for solar modules - which are the most promising?
    In 2023, photovoltaic systems generated more than 5% of the world’s electrical energy and the installed capacity doubles every two to three years. Optical technologies can further increase the efficiency of solar modules and open up new applications, such as coloured solar modules for facades. Now, 27 experts provide a comprehensive overview of the state of research and assess the most promising innovations. The report, which is also of interest to stakeholders in funding and science management, was coordinated by HZB scientists Prof. Christiane Becker and Dr. Klaus Jäger.