ĚÇĐÄÍřŇł°ć

17 May 2022

Efficient and environmentally friendly solar cells are required for a transition to a fossil-free energy supply. Researchers at ĚÇĐÄÍřŇł°ć have mapped how energy flows in organic solar cells, something that previously had been unknown. The results, which can contribute to more efficient solar cells, are published in Nature Communications.

Xiane Li in the lab. Photographer: Thor Balkhed
Xian’e Li, a PhD student at ĚÇĐÄÍřŇł°ć and principal author of the scientific article published in Nature Communications.

“To enable the full potential of organic solar cells to be exploited, there is a need for a clear picture of how they work. We have now obtained that picture. This provides a better understanding of how to create new efficient and sustainable solar cell materials,” says Mats Fahlman, Portrait picture of Mats FahlmanMats Fahlman, a professor at the Laboratory of Organic Electronics at Linköping University. Photo credit Thor Balkhed a professor at the Laboratory of Organic Electronics at Linköping University.

Today, solar energy meets around two percent of the world's energy needs. But its potential is far in excess of that. The energy contained in the sun's rays is more than enough to meet our needs today and in the future. Solar cells that are cheap and environmentally friendly to manufacture are needed to be successful. In addition, they need to be efficient at absorbing a large proportion of the sun's rays and converting to electrical energy.

Sustainable

Organic solar cells based on organic semiconductors are increasingly emerging as a sustainable option. But until just a few years ago they could not stand comparison with traditional silicon-based solar cells for efficiency. This was due to energy loss in charge separation, which was thought to be unavoidable.

Xian’e Li and Qilun Zhang in the lab.Xian’e Li and Qilun Zhang are PhD students at the Laboratory of Organic Electronics and have lead the study. Photo credit Thor Balkhed But in 2016, a research team at Linköping University together with colleagues in Hong Kong were able to show that it was possible to avoid the energy loss using different donor-acceptor materials that help the electron to escape from its hole more easily. Energy loss then decreased and efficiency increased. The problem was that no one knew exactly how it happened. It was possible to see that it worked, but not why.

"Like a strawberry and cream cake"

Some of the same research team at Linköping University have now solved the mystery that had led to disagreement in this field of research. In a new study published in Nature Communications, the researchers have identified what energy levels are required to minimise energy losses.

“To find out how the energy flows, we laid nanometre-thick organic semiconducting films in several layers one on top of the other, rather like a strawberry and cream cake. After that we measured the energy required to separate the electrons from their holes in each individual layer,” Sample of conductive polymer.A sample of conductive polymer. Photo credit Thor Balkhed says Xian’e Li, a PhD student at Linköping University and principal author of the scientific article.

The researchers were then able to map the mechanism behind the energy-efficient charge separation. This systematic mapping points a new way forward for the development of organic solar cells.

The study is funded by the Swedish Research Council, the Swedish Energy Agency and the Swedish Government's strategic initiative Advanced Functional Materials at Linköping University.

The article: Xian’e Li, Qilun Zhang, Jianwei Yu, Ye Xu, Rui Zhang, Chuanfei Wang, Huotian Zhang, Simone Fabiano, Xianjie Liu, Jianhui Hou, Feng Gao & Mats Fahlman Nature Communications 13 2022 doi: 10.1038/s41467-022-29702-w

Footnote: The organic solar cells in the study are of a type where the electron acceptor is made of a material other than fullerene (a form of carbon), which previously was the most common material used. Non-fullerene-based organic cells become more stable and are capable of absorbing a greater proportion of the sun's rays for conversion to energy.

Xiane Li.Xian'e Li, PhD student at Linköping university. Photo credit Thor Balkhed

Contact

Reseach at the highest level

Organisation

Latest news from LiU

En grupp människor som sitter vid ett bord framför en folkmassa.

Participants in UN climate meetings want greater focus on implementation

UN climate negotiations are often criticised for moving too slowly. A new study published in Nature Climate Change examines what changes government delegates and other participants at the COP29 UN climate conference would like to see.

Neil Lagali vid utrustning för att undersöka ögonen.

Eye problems after COVID-19 can now be explained

Mild COVID-19 can cause severe and long-lasting eye problems, according to a study from LiU. The study also explains why it has been difficult for sufferers to get help: the abnormal eye behaviour cannot be detected by standard methods.

A woman kneeling down in a garden picking plants.

When soil becomes data – how digitalisation affects knowledge of soil health

How do we know whether soil is healthy? A new study from ĚÇĐÄÍřŇł°ć shows that as knowledge about soil is increasingly translated into digital data, important insights about its biological life and local context risk being overlooked.