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Rare quantum state reveals particles with quarter-electron charge

Rare quantum state reveals particles with quarter-electron charge

phys.org 25.09.2026 15:00 3 views
An electron's charge is normally fixed, like a coin you can't break into pieces. But if electrons are cooled close to absolute zero and trapped in a two-dimensional layer under a powerful magnetic field, they organize in

This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: An electron's charge is normally fixed, like a coin you can't break into pieces. But if electrons are cooled close to absolute zero and trapped in a two-dimensional layer under a powerful magnetic field, they organize into a collective state of "quasiparticles" that seem to hold only a fraction of an electron's charge.

This state is known as the "fractional quantum Hall effect." A small number of these states, known as "even-denominator states," have drawn attention because some theories predict they could contain unusual quasiparticles called "non-Abelian anyons." Why are these interesting? Because their quantum properties make them candidates for storing and processing information in fault-tolerant (error-resistant) topological quantum computers. Now, scientists from the groups of Mitali Banerjee at EPFL, Moty Heiblum at the Weizmann Institute of Science and Mansour Shayegan at Princeton University have studied one such state, known as the ν = 1/2 fractional quantum Hall state.

It forms in a wide layer of gallium arsenide, a material used in optoelectronics, wireless communication and even solar panels. Their work is published in Physical Review Letters. "For the first time in the history of this field, two different groups (Weizmann and EPFL) have measured the same values of fractional charge," says Banerjee.

The researchers set out to answer a basic question about the ν = 1/2 state: What charge do its quasiparticles carry? To find out, they studied electrons confined within a 70-nanometer-wide layer of gallium arsenide. Each device contained a narrow constriction called a "quantum point contact." The constriction allowed the researchers to partially scatter quasiparticles moving through the device and measure the resulting "shot noise." When current flows through the quantum point contact, individual charge carriers pass through in a random, stop-and-start way, like rain hitting a roof.

The size of the resulting electrical "noise" reveals how much charge each carrier is moving. The researchers built the point contact using a distinctive etching method, then deposited metal gates around it to fine-tune how much current could pass through. They tested two nearly identical devices in two different labs (one at EPFL and one at the Weizmann Institute) and first confirmed that their method worked by measuring known states with charges of a full electron and two-thirds of an electron.

When they applied the same technique to the ν = 1/2 state, both devices gave the same answer: The particles carried very close to a quarter of an electron's charge (0.250 ± 0.013 in one device and 0.249 ± 0.018 in the other). Both measurements match one-quarter of an electron's charge, or e/4. "This is important because the quantum Hall state that was studied here is special as it survives up to a few kelvins, and is thought to be only the second known state in gallium arsenide to possess special non-Abelian properties that can eventually enable a topological quantum computer," says Banerjee.

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