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Unmatched Flexibility and Efficiency Research Team Develops High-Performance Stretchable Solar Cells​

Source: Kaist 2 min Reading Time

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A research team at Kaist has developed a groundbreaking stretchable organic solar cell, showcasing the world's highest photovoltaic conversion efficiency at 19 %. This innovation not only results in high-performance solar cells but also opens up possibilities for various malleable and elastic electronic devices.

Chemical structure of the newly developed conductive polymer and performance of stretchable organic solar cells using the material.(Source:  Kaist Polymer Energy and Electronics Lab)
Chemical structure of the newly developed conductive polymer and performance of stretchable organic solar cells using the material.
(Source: Kaist Polymer Energy and Electronics Lab)

With the market for wearable electric devices growing rapidly, stretchable solar cells that can function under strain have received considerable attention as an energy source. To build such solar cells, it is necessary that their photoactive layer, which converts light into electricity, shows high electrical performance while possessing mechanical elasticity. However, satisfying both of these two requirements is challenging, making stretchable solar cells difficult to develop.

Photovoltaic efficiency and mechanical stretchability of newly developed polymers compared to existing polymers.(Source:  Kaist Polymer Energy and Electronics Lab)
Photovoltaic efficiency and mechanical stretchability of newly developed polymers compared to existing polymers.
(Source: Kaist Polymer Energy and Electronics Lab)

On December 26, a Kaist research team from the Department of Chemical and Biomolecular Engineering (CBE) led by Professor Bumjoon Kim announced the development of a new conductive polymer material that achieved both high electrical performance and elasticity while introducing the world’s highest-performing stretchable organic solar cell.

Organic solar cells are devices whose photoactive layer, which is responsible for the conversion of light into electricity, is composed of organic materials. Compared to existing non-organic material-based solar cells, they are lighter and flexible, making them highly applicable for wearable electrical devices. Solar cells as an energy source are particularly important for building electrical devices, but high-efficiency solar cells often lack flexibility, and their application in wearable devices have therefore been limited to this point.

The team led by Professor Kim conjugated a highly stretchable polymer to an electrically conductive polymer with excellent electrical properties through chemical bonding, and developed a new conductive polymer with both electrical conductivity and mechanical stretchability. This polymer meets the highest reported level of photovoltaic conversion efficiency (19 %) using organic solar cells, while also showing ten times the stretchability of existing devices. The team thereby built the world’s highest performing stretchable solar cell that can be stretched up to 40 % during operation, and demonstrated its applicability for wearable devices.

Professor Kim said, “Through this research, we not only developed the world’s best performing stretchable organic solar cell, but it is also significant that we developed a new polymer that can be applicable as a base material for various electronic devices that needs to be malleable and/or elastic.”

Original Article: Rigid- and soft-block-copolymerized conjugated polymers enable high-performance intrinsically stretchable organic solar cells; Joule; DOI: 10.1016/j.joule.2023.11.005

(ID:49862009)

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