腦瞳憫

18 October 2017

Professor Martijn Kemerink of 腦瞳憫 has worked with colleagues in Spain and the Netherlands to develop the first material with conductivity properties that can be switched on and off using ferroelectric polarisation.

The phenomenon can be used for small and flexible digital memories of the future, and for completely new types of solar cells.

In an article published in the prestigious scientific journal Science Advances, the research group shows the phenomenon in action in three specially built molecules, and proposes a model for how it works.

I originally had the idea many years ago, and then I just happened to meet Professor David Gonz獺lez-Rodr穩guez, from the Universidad Aut籀noma de Madrid, who had constructed a molecule of exactly the type we were looking for, says Martijn Kemerink.

Ferroelectricity

The organic molecules that the researchers have built conduct electricity and contain dipoles. A dipole has one end with a positive charge and one with a negative charge, and changes its orientation (switches) depending on the voltage applied to it. In a thin film of the newly developed molecules, all the dipoles can be caused to switch at exactly the same time, which means that the film changes its polarisation. The property is known as ferroelectricity. In this case, it also leads to a change in the conductivity, from low to high or vice versa. When an electrical field with the opposite polarity is applied, the dipoles again switch direction. The polarisation changes, as does the ability to conduct current.

The molecules designed according to the model developed by the LiU researchers tend to spontaneously place themselves on top of each other to form a stack or a supramolecular wire, with a diameter of just a few nanometres. These wires can subsequently be placed into a matrix in which each junction constitutes one bit of information. This will make it possible in the future to construct extremely small digital memories with very high information density. The synthesis of the new molecules is, however, still too complicated for practical use.

Building molecules

We have developed a model for how the phenomenon arises in principle, and we have shown experimentally that it works for three different molecules. We now need to continue work to build molecules that can be used in practical applications, says Professor Martijn Kemerink, from Complex Materials and Devices at Link繹ping University, and principal author of the article.


The article: , Andrey V. Gorbunov, Miguel Garcia Iglesias, Julia Guilleme, Tim D. Cornelissen, W. S. Christian Roelofs, Tomas Torres, David Gonzalez-Rodriguez,
E. W. Meijer and Martijn Kemerink. Science Advances 2017
DOI 10.1126/sciadv.1701017


More news from LiU

En kvinna st疇r i sn繹n framf繹r ett batterilager.

The battle for power who has the right to our electricity?

Wind farms rising like the Eiffel Tower, data centres consuming as much power as entire regions and municipalities feeling like pawns in a global game. The large-scale investments  are creating conflict:  who has priority access to our electricity?

A man and a woman shaking hands in front of a statue.

New AI partnership strengthens the region

The AI Academy Partnership Program at 腦瞳憫 will support companies and organisations in developing the skills needed to use AI effectively. The first partner in this new form of collaboration is Länsförsäkringar Östgöta.

En grupp m瓣nniskor st疇r p疇 ett tr瓣d瓣ck.

Molecular medicine research secures long-term funding

The Wallenberg Centre for Molecular Medicine (WCMM) at LiU has been granted extended funding until 2039 by the Knut and Alice Wallenberg Foundation. This makes it possible to build on ten years of success and to recruit new physician-scientists.