Building a Gated-Access Fast Lane for Ions

In organic conductors where charge is carried by both electrons and ions, scientists have discovered a way to make the ions move more than ten times faster than in comparable ion-tranport methods. The results could apply to a host of areas, including improved battery charging, biosensing, soft robotics, and neuromorphic computing.

Organic mixed ionic-electronic conductors (OMIECs) combine the advantages of the ion signaling used by many biological systems with the electron signaling used by computers. However, exactly how these conductors coordinate movement of both ions and electrons has not been well understood.

“Being able to control these signals that life uses all the time in a way that we’ve never been able to do is pretty powerful,” said Brian Collins, WSU physicist and senior author on the study. “This acceleration could also have benefits for energy storage, which could be a big impact.”

Collins and his colleagues observed that ions in OMIECs moved slowly relative to electrons. Because of their coordinated movement, the slow ion movement also slowed the electrical current. To solve this problem, the researchers created a straight, nanometer-sized channel just for the ions, which moved through the channel more than ten times faster than they would through water alone.

At the Advanced Light Source (ALS), resonant soft x-ray scattering (RSoXS) at Beamline 11.0.1.2 was used to explore the interplay between the superhighway effect and the internal nano-morphology of the channel.

Gated access to the channel was achieved by lining it with hydrophilic molecules, which attracted ions dissolved in water. Chemical reactions could turn this attraction off, opening and closing the channel, much the same way that biological systems control access through cell walls.

Read more on ALS website

Image: Record ion speeds are achieved in organic conductors where local molecules can attract or repel ions from nanochannels that act as ion superhighways. Credit: Second Bay Studios

Direct observation of the ad- and desorption of guest atoms into a mesoporous host

Battery electrodes, storage devices for gases, and some catalyst materials have tiny functional pores that can accommodate atoms, ions, and molecules. How these guest atoms are absorbed into or released from the pores is crucial to understanding the porous materials’ functionality. However, usually these processes can only be observed indirectly. A team from the Helmholtz Zentrum Berlin (HZB) has employed two experimental approaches using the ASAXS instrument at the PTB X-ray beamline of the HZB BESSY II synchrotron to directly observe the adsorption process of atoms in a mesoporous model system. The work lays the foundations for new insights into these kinds of energy materials.

Most battery materials, novel catalysts, and storage materials for hydrogen have one thing in common: they have a structure comprised of tiny pores in the nanometer range. These pores provide space which can be occupied by guest atoms, ions, and molecules. As a consequence, the properties of the guest and the host can change dramatically. Understanding the processes inside the pores is crucial to develop innovative energy technologies.

Read more on the HZB website

Image: From the measurement data, the team was able to determine that the xenon atoms first accumulate on the inner walls of the pores (state 1), before they fill them up (state 2). The X-ray beam penetrates the sample from below.

Credit: © M. Künsting/HZB