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Surfing the waves: Electrons break law to go with the flow
March 31, 2020
Okinawa Institute of Science and Technology (OIST) Graduate University
Researchers measure how fluid changes the movement of electrons.
a b e g d
FULL STORY
If you see people walking down a street and coming to a junction, it's difficult to predict which
direction they might take. But, if you see people sitting in separate boats, floating down a
stream, and the stream splits into two channels, it's likely that most, if not all, of them will be
carried down one channel, the channel that has the stronger flow.
Scientists in the Quantum Dynamics Unit at Okinawa Institute of Science and Technology Graduate University
(OIST) are looking at something similar, but their research is at a much smaller scale. They're running experiments
to see how the motion of electrons is impacted by fluid. This study was published in Physical Review Letters.
Professor Denis Konstantinov, who runs the Unit, demonstrated the concept with a piece of wire. "If we run an
electric current through a piece of wire, then we know that the electrons will move from one end to the other. If we
split the wire into two, half of electrons will flow down one side, and the other half will flow down the other."
This is due to Ohm's law, a physics law, which states that electric current is proportional to voltage and inversely
proportional to resistance, so if the resistance equally distributes between two channels, half the electrons will go
down each channel.
"But," Professor Konstantinov explained. "If the electrons are sitting on liquid, rather than in a solid, they might
break Ohm's law. That's what we wanted to measure."
This theory comes from the concept of a polaron, which is an electron that's "dressed" by a cloud of the medium
it's sitting in. This makes it heavier, slower and changes its behavior. Previously polarons have been discussed in
terms of ionic crystals in solids, but much more rarely in liquids.
The researchers used superfluid helium, which has several unique properties. For example, it remains in a liquid
form at temperatures down to absolute zero, when any other liquid would freeze, and behaves like fluid with zero
viscosity, or no resistance. Electrons would only be able to sit on top, rather than sinking. Thus, it provided the re‐
Cite This Page:
Okinawa Institute of Science and Technology (OIST) Graduate University. "Surfing the waves: Electrons break law
to go with the flow." ScienceDaily. ScienceDaily, 31 March 2020.
<www.sciencedaily.com/releases/2020/03/200331130041.htm>.
searchers with a 2D electron system.
They created a tiny structure, on the scale of micrometers, of three reservoirs connected by a T-junction, and
slightly submerged this structure in superfluid helium.
As the electrons moved and disturbed the liquid, they created capillary waves, or ripples. At high electron densi‐
ties, the electrons became trapped in the shallow dimple of the waves. These are slightly different from the tradi‐
tional polarons, so the researchers called them ripplopolarons, inspired by their similarities to ripples on water.
"Ohm's law states that the electrons should split at the T junction," said Professor Konstantinov, "But, due to mo‐
mentum conservation, the flow of fluid should keep going down the straight path. We theorized that the ripplopo‐
larons -- the trapped electrons -- would break Ohm's law and all be carried in the same direction."
The researchers applied an electric field, which moved the ripplopolarons out of the left reservoir. As they moved
along the channel, they came to the junction, and could either turn and go to the side reservoir or continue
straight to the right reservoir.
It was as the researchers predicted. The ripplopolarons continued straight from the left reservoir to the right reser‐
voir, following momentum conservation rather than Ohm's law.
However, this law-breaking behavior only occurred in certain situations. The density of electrons had to be high,
or the ripplopolarons wouldn't form, and the temperature had to be low, or the waves would simply pitter out.
When the researchers ran the experiment in the opposite direction, they found the same unidirectional movement,
but when they ran the electrons out of the side reservoir, they found that the ripplopolarons would crash into the
wall at the top, the waves would disappear and the [now-free] electrons would once again follow Ohm's law.
Although there are applications for understanding how electrons operate, this experiment was mainly driven by
curiosity. "We wanted to know how electrons are influenced by the medium they're in," said Professor Konstanti‐
nov, "For us, it was the discovery that was exciting. But it's also important that we understand these properties.
Electrons in fluids could be useful when it comes to building qubits, the tiny parts that make up quantum comput‐
ers. If we could use electrons in fluids for qubits, we could create a flexible, moveable architecture for the
computers."
Story Source:
Materials provided by Okinawa Institute of Science and Technology (OIST) Graduate University. Original writ‐
ten by Lucy Dickie. Note: Content may be edited for style and length.
Journal Reference:
1. A. O. Badrutdinov, D. G. Rees, J. Y. Lin, A. V. Smorodin, D. Konstantinov. Unidirectional Charge Transport via
Ripplonic Polarons in a Three-Terminal Microchannel Device. Physical Review Letters, 2020; 124 (12) DOI:
10.1103/PhysRevLett.124.126803
MLA APA Chicago
RELATED STORIES
Shining Light on Low-Energy Electrons
June 13, 2017 — The classic method for studying how electrons interact with matter is by analyzing their scatter‐
ing through thin layers of a known substance. This happens by directing a stream of electrons at the ...
read more 
Physicists Learn How to Control the Movement of Electrons in a Molecule
Oct. 22, 2015 — Theoretical physicists have just proved to be able to track and control the movement of elec‐
trons in molecules. The research falls into the domain of attophysics -- tracking the particles on the time ...
read more 
Controlling a Robotic Arm With a Patient's Intentions
May 21, 2015 — Neural prosthetic devices implanted in the brain's movement center, the motor cortex, can allow
patients with amputations or paralysis to control the movement of a robotic limb -- one that can be ...
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Apr. 28, 2015 — Scientists and engineers have reported the direct detection of cyclotron radiation from individual
electrons. They used a specially developed spectroscopic method that allowed them to measure the ...
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FROM AROUND THE WEB
Below are relevant articles that may interest you. ScienceDaily shares links with scholarly publications in the Trend‐
MD network and earns revenue from third-party advertisers, where indicated.
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Surfing the waves: Electrons break law to go with the flow

  • 1. Your source for the latest research news Date: Source: Summary: Share: Science News from research organizations Surfing the waves: Electrons break law to go with the flow March 31, 2020 Okinawa Institute of Science and Technology (OIST) Graduate University Researchers measure how fluid changes the movement of electrons. a b e g d FULL STORY If you see people walking down a street and coming to a junction, it's difficult to predict which direction they might take. But, if you see people sitting in separate boats, floating down a stream, and the stream splits into two channels, it's likely that most, if not all, of them will be carried down one channel, the channel that has the stronger flow. Scientists in the Quantum Dynamics Unit at Okinawa Institute of Science and Technology Graduate University (OIST) are looking at something similar, but their research is at a much smaller scale. They're running experiments to see how the motion of electrons is impacted by fluid. This study was published in Physical Review Letters. Professor Denis Konstantinov, who runs the Unit, demonstrated the concept with a piece of wire. "If we run an electric current through a piece of wire, then we know that the electrons will move from one end to the other. If we split the wire into two, half of electrons will flow down one side, and the other half will flow down the other." This is due to Ohm's law, a physics law, which states that electric current is proportional to voltage and inversely proportional to resistance, so if the resistance equally distributes between two channels, half the electrons will go down each channel. "But," Professor Konstantinov explained. "If the electrons are sitting on liquid, rather than in a solid, they might break Ohm's law. That's what we wanted to measure." This theory comes from the concept of a polaron, which is an electron that's "dressed" by a cloud of the medium it's sitting in. This makes it heavier, slower and changes its behavior. Previously polarons have been discussed in terms of ionic crystals in solids, but much more rarely in liquids. The researchers used superfluid helium, which has several unique properties. For example, it remains in a liquid form at temperatures down to absolute zero, when any other liquid would freeze, and behaves like fluid with zero viscosity, or no resistance. Electrons would only be able to sit on top, rather than sinking. Thus, it provided the re‐
  • 2. Cite This Page: Okinawa Institute of Science and Technology (OIST) Graduate University. "Surfing the waves: Electrons break law to go with the flow." ScienceDaily. ScienceDaily, 31 March 2020. <www.sciencedaily.com/releases/2020/03/200331130041.htm>. searchers with a 2D electron system. They created a tiny structure, on the scale of micrometers, of three reservoirs connected by a T-junction, and slightly submerged this structure in superfluid helium. As the electrons moved and disturbed the liquid, they created capillary waves, or ripples. At high electron densi‐ ties, the electrons became trapped in the shallow dimple of the waves. These are slightly different from the tradi‐ tional polarons, so the researchers called them ripplopolarons, inspired by their similarities to ripples on water. "Ohm's law states that the electrons should split at the T junction," said Professor Konstantinov, "But, due to mo‐ mentum conservation, the flow of fluid should keep going down the straight path. We theorized that the ripplopo‐ larons -- the trapped electrons -- would break Ohm's law and all be carried in the same direction." The researchers applied an electric field, which moved the ripplopolarons out of the left reservoir. As they moved along the channel, they came to the junction, and could either turn and go to the side reservoir or continue straight to the right reservoir. It was as the researchers predicted. The ripplopolarons continued straight from the left reservoir to the right reser‐ voir, following momentum conservation rather than Ohm's law. However, this law-breaking behavior only occurred in certain situations. The density of electrons had to be high, or the ripplopolarons wouldn't form, and the temperature had to be low, or the waves would simply pitter out. When the researchers ran the experiment in the opposite direction, they found the same unidirectional movement, but when they ran the electrons out of the side reservoir, they found that the ripplopolarons would crash into the wall at the top, the waves would disappear and the [now-free] electrons would once again follow Ohm's law. Although there are applications for understanding how electrons operate, this experiment was mainly driven by curiosity. "We wanted to know how electrons are influenced by the medium they're in," said Professor Konstanti‐ nov, "For us, it was the discovery that was exciting. But it's also important that we understand these properties. Electrons in fluids could be useful when it comes to building qubits, the tiny parts that make up quantum comput‐ ers. If we could use electrons in fluids for qubits, we could create a flexible, moveable architecture for the computers." Story Source: Materials provided by Okinawa Institute of Science and Technology (OIST) Graduate University. Original writ‐ ten by Lucy Dickie. Note: Content may be edited for style and length. Journal Reference: 1. A. O. Badrutdinov, D. G. Rees, J. Y. Lin, A. V. Smorodin, D. Konstantinov. Unidirectional Charge Transport via Ripplonic Polarons in a Three-Terminal Microchannel Device. Physical Review Letters, 2020; 124 (12) DOI: 10.1103/PhysRevLett.124.126803 MLA APA Chicago
  • 3. RELATED STORIES Shining Light on Low-Energy Electrons June 13, 2017 — The classic method for studying how electrons interact with matter is by analyzing their scatter‐ ing through thin layers of a known substance. This happens by directing a stream of electrons at the ... read more  Physicists Learn How to Control the Movement of Electrons in a Molecule Oct. 22, 2015 — Theoretical physicists have just proved to be able to track and control the movement of elec‐ trons in molecules. The research falls into the domain of attophysics -- tracking the particles on the time ... read more  Controlling a Robotic Arm With a Patient's Intentions May 21, 2015 — Neural prosthetic devices implanted in the brain's movement center, the motor cortex, can allow patients with amputations or paralysis to control the movement of a robotic limb -- one that can be ... read more  Electron Chirp: Cyclotron Radiation from Single Electrons Measured Directly for First Time Apr. 28, 2015 — Scientists and engineers have reported the direct detection of cyclotron radiation from individual electrons. They used a specially developed spectroscopic method that allowed them to measure the ... read more  FROM AROUND THE WEB Below are relevant articles that may interest you. ScienceDaily shares links with scholarly publications in the Trend‐ MD network and earns revenue from third-party advertisers, where indicated. IP Watch: LLNL, U of California, Quest Dx, and Bio-Rad Among US Patent Winners GenomeWeb, 2013 University of Utah Looks to Commercialize Continuous Flow Microfluidic PCR Tech GenomeWeb, 2012 Patent Watch: Jan 20, 2009 Bernadette Toner, GenomeWeb, 2009 Reusable Biochip by Fluidigm Moves Animal Genotyping toward $1 Mark GenomeWeb, 2010 Rainer Cramer on IR MALDI and the University of Reading s New BioCentre GenomeWeb, 2005 Researchers Describe Microchip-like Device for Sorting, Studying Single Cells GenomeWeb, 2014 At AGBT, Illumina Provides Details, Initial Data on NeoPrep GenomeWeb, 2015
  • 4. About This Site  |  Staff  |  Reviews  |  Contribute  |  Advertise  |  Privacy Policy  |  Editorial Policy  |  Terms of Use Copyright 2020 ScienceDaily or by other parties, where indicated. All rights controlled by their respective owners. Content on this website is for information only. It is not intended to provide medical or other professional advice. Views expressed here do not necessarily reflect those of ScienceDaily, its staff, its contributors, or its partners. Financial support for ScienceDaily comes from advertisements and referral programs, where indicated. Powered by Rheonix Unveils Channel-Free Microfluidic Device for Molecular Testing Platform GenomeWeb, 2014 Free Subscriptions Get the latest science news with ScienceDaily's free email newsletters, updated daily and weekly. Or view hourly updated newsfeeds in your RSS reader:  Email Newsletters  RSS Feeds Follow Us Keep up to date with the latest news from ScienceDaily via social networks:  Facebook  Twitter  LinkedIn Have Feedback? Tell us what you think of ScienceDaily -- we welcome both positive and negative comments. Have any problems using the site? Questions?  Leave Feedback  Contact Us