Researchers at CU Boulder have learned why some nano sources cool when bunched together, which could help companies develop electronics that overheat less.

A team of physicists at CU Boulder has solved the mystery behind a perplexing phenomenon in the nano realm: why some ultra-small heat sources cool down faster if you pack them closer together. The findings, which will publish this week in the journalĀ Proceedings of the National Academy of SciencesĀ (PNAS), could one day help the tech industry design speedier electronic devices that overheat less.
āOftenĀ heat is a challenging consideration in designing electronics. You build a device then discover that itās heating up faster than desired,ā said study co-author Joshua Knobloch, postdoctoral research associate atĀ JILA, a joint research institute between CU Boulder and the National Institute of Standards and Technology (NIST). āOur goal is to understand the fundamental physics involved so we can engineer future devices to efficiently manage the flow of heat.ā
The research began with an unexplained observation.Ā In 2015, researchers led by physicists Margaret Murnane and Henry Kapteyn at JILAĀ were experimenting with bars of metalĀ that were many times thinner than the width of a human hair on a silicon base. When they heated those bars up with a laser, something strange occurred.
āThey behaved very counterintuitively,ā Knobloch said. āThese nano-scale heat sources do not usually dissipate heat efficiently. But if you pack them close together, they cool down much more quickly.ā
Now, the researchers know why this happens.
In the new study, they used computer-based simulations to track the passage of heat from their nano-sized bars. They discovered that when they placed the heat sources close together, the vibrations of energy they produced began to bounce off each other, scattering heat away and cooling the bars down.
The groupās results highlight a major challenge in designing the next generation of tiny devices, such as microprocessors or quantum computer chips: When you shrink down to very small scales, heat does not always behave the way you think it should.

Atom by atom
The transmission of heat in devices matters, the researchers added. Even minute defects in the design of electronics like computer chips can allow temperature to build up, adding wear and tear to a device. As tech companies strive to produce smaller and smaller electronics, theyāll need to pay more attention than ever before to phononsāvibrations of atoms that carry heat in solids.
āHeat flow involves very complex processes, making it hard to control,ā Knobloch said. āBut if we can understand how phonons behave on the small scale, then we can tailor their transport, allowing us to build more efficient devices.ā
To do just that, Murnane and Kapteyn and their team of experimental physicists joined forces with a group of theorists led by MahmoudĀ Hussein, professor in theĀ Ann and H.J. Smead Department of Aerospace Engineering Sciences. His groupĀ specializes in simulating, or modeling, the motion of phonons.
āAt the atomic scale, the very nature of heat transfer emerges in a new light,ā said Hussein who also has aĀ courtesy appointment in theĀ Department of Physics.
The researchersĀ essentiallyĀ recreated their experiment from several years before, but this time, entirely on a computer. They modeled a series of silicon bars, laid side by side like the slats in a train track and heated them up.
The simulations were so detailed, Knobloch said, that the team could follow the behavior of each and every atom in the modelāmillions of them in allāfrom start to finish.
āWe were really pushing the limits of memory of theĀ Summit SupercomputerĀ at CU Boulder,ā he said.
Directing heat
The technique paid off. The researchers found, for example, that when they spaced their silicon bars far enough apart, heat tended to escape away from those materials in a predictable way. The energy leaked from the bars and into the material below them, dissipating in every direction.
When the bars got closer together, however, something else happened. As the heat from those sources scattered, it effectively forced that energy to flow more intensely in a uniform direction away from the sourcesālike a crowd of people in a stadium jostling against each other and eventually leaping out of the exit. The team denoted this phenomenon ādirectional thermal channeling.ā
āThis phenomenon increases the transport of heat down into the substrate and away from the heat sources,ā Knobloch said.
The researchers suspect that engineers could one day tap into this unusual behavior to gain a better handle on how heat flows in small electronicsādirecting that energy along a desired path, instead of letting it run wild.
For now, the researchers see the latest study as what scientists from different disciplines can do when they work together.
āThis project was such an exciting collaboration between science and engineeringāwhere advanced computational analysis methods developed by Mahmoudās group were critical for understanding new materials behavior uncovered earlier by our group using new extreme ultraviolet quantum light sources,ā Murnane said.
– Edited by Chris Vavra, web content manager,Ā Control Engineering, CFE Media and Technology, [email protected].