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Helium-3 Atoms Held in Laser Tweezers Point to Faster, More Stable Quantum Computers

October 5, 2026
in Mathematics
Katie Riggs
By Katie Riggs Scienmag Editorial Profile - Quantum Physics
Reading Time: 5 mins read
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Helium-3 Atoms Held in Laser Tweezers Point to Faster, More Stable Quantum Computers

Helium-3 Atoms Held in Laser Tweezers Point to Faster, More Stable Quantum Computers

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Helium is best known for lifting balloons and cooling the magnets inside MRI scanners, but a team at the University of Chicago believes the second-lightest element in the universe could do something far more ambitious: power a new generation of quantum computers. In a paper published in the journal PRX Quantum, researchers led by Jacob Covey, an associate professor at the Pritzker School of Molecular Engineering and the Department of Physics, laid out a detailed concept for a quantum computing platform built from individual helium atoms held in place by focused beams of laser light. The idea turns what is usually a nuisance about helium — its extraordinarily low mass — into the very property that makes the machine work, promising faster operations and a form of quantum information processing that is naturally resistant to certain kinds of errors.

The heart of the design is a tool that quantum physicists have refined over the past two decades: optical tweezers. Unlike the tiny mechanical tongs used by watchmakers, optical tweezers are better imagined as science fiction tractor beams. A single, tightly focused laser beam creates a spot in space that attracts an atom, holding it in place without any physical contact. As Covey describes it, one beam and one focused spot are enough, and the atom simply falls into the light. Arrays of such beams can hold dozens or hundreds of individual atoms, each one acting as a qubit, the fundamental unit of quantum information. The approach has already produced some of the most impressive results in neutral-atom quantum computing, but the choice of atom matters enormously, and that is where helium comes in.

Trapping an atom with light requires the laser to supply enough energy to promote the atom from its ground state to an excited state, and the amount of energy needed depends on the species of atom. Hydrogen, the lightest element of all, is currently out of reach because the jump to its excited state demands more energy than modern technology can conveniently deliver. Helium is also a high-energy atom, but it possesses a crucial feature that hydrogen lacks: a second electron. That extra electron allows helium to settle into a temporary metastable state, an energy level sitting between the ground state and the excited state. Covey offers a vivid analogy: if reaching the excited state is like leaping onto a table, the metastable state is like pulling up a stepstool first. Atoms with only one electron on their outer shell, including hydrogen and lithium, have no such stepstool and must make the jump in a single bound.

The metastable state of helium is remarkable in its own right. In many other elements, comparable states last only seconds before the atom decays back down. Helium’s metastable state persists for roughly two hours, an extraordinarily long lifetime by atomic standards. That longevity gives experimentalists a generous window in which to laser-cool the atoms, trap them, and manipulate them before they decay. Helium’s well-resolved energy structure also makes it easier to laser-cool than lithium, according to Zheyuan Li, a PhD student in Covey’s lab and a co-first author of the paper. Cooling is an essential prerequisite for trapping, because atoms must be slowed almost to a standstill before optical tweezers can grip them reliably.

The second advantage is speed. Because helium is even lighter than lithium, the third-lightest element and the basis of the first fermionic quantum computing demonstrations earlier this year, quantum tunneling rates in a helium-based machine would be about three times faster at minimum, Li explained. Tunneling — the quantum phenomenon in which particles pass through barriers that classical physics says they cannot cross — underlies how atoms interact and exchange information in these simulators. Faster tunneling means faster transport of atoms and faster gate-like operations between them, which translates directly into a machine that can run more complex calculations before decoherence and other imperfections erode the fragile quantum states. In quantum computing, where coherence times are measured in fleeting fractions of a second, a threefold speedup is not a cosmetic improvement; it is a fundamental upgrade to the platform’s capabilities.

There is a subtlety in the choice of isotope, and it is here that the Chicago design makes its most distinctive move. Ordinary helium, the helium-4 that cools MRI machines and fills party balloons, is a boson, one of the two great families into which quantum particles divide. The other family, fermions, is named for University of Chicago legend Enrico Fermi, while bosons take their name from Indian physicist Satyendra Nath Bose. The two families obey fundamentally different rules: fermions cannot occupy the same quantum state at the same time, a prohibition known as the Pauli exclusion principle, while bosons are free to pile into identical states. That antisocial character of fermions turns out to be a blessing for quantum computing, because it frees fermionic machines from many of the errors that plague computers built from bosonic atoms.

Fermionic quantum computing has been a dream since the 1990s, but it was only cracked in early 2026, when two lithium-based models achieved the milestone. The Chicago team proposes to go one better by using helium-3, which has one fewer neutron than helium-4 and is therefore a fermion. Using the lightest fermionic atom that can be trapped means fermionic quantum computing can be implemented natively, Li said, rather than using bosonic atoms and then trying to simulate fermionic structure on top of them. Co-author Zoe Yan, an assistant professor of physics at UChicago who has previously worked with lithium-6, the next-heaviest fermion after helium-3, helped make the case that the extra effort of helium-3 is worthwhile. Hydrogen-1 is a boson, and while fermionic hydrogen-2, or deuterium, exists in principle, Covey noted that deuterium is far more difficult to work with than helium and is not even much lighter than helium-3, erasing most of the mass advantage that motivates the whole design.

The concept has drawn praise from outside the collaboration. Waseem Bakr, a professor of physics at Princeton University who was not involved in the research, said that by using the lightest trappable atom the work turns low mass into a real advantage, delivering faster tunneling, faster transport, and controllable motional qubits, and he called it a compelling blueprint for the next generation of fermionic quantum simulators. Such endorsements matter in a field where competing platforms — superconducting circuits, trapped ions, photonic chips, and neutral atoms — are racing to demonstrate practical advantage, and where the choice of physical substrate can determine how far a design can ultimately scale.

Of course, a concept paper is not a working machine, and the team’s next step is to build one. In collaboration with Yan, the researchers plan to trap and control individual helium-3 atoms for the first time. The foundation is there, Covey said, and progress is advancing to the point where the team hopes to have these atoms in tweezers for the first time probably within the next year or two. The path will begin, somewhat surprisingly, with the wrong isotope. Helium-3 is very expensive, explained Rupsa De, a PhD student in Covey’s lab and the paper’s other co-first author, so the team will start with helium-4 and then proceed toward helium-3. Because helium-4 is bosonic, the early experiments will validate the trapping and control techniques rather than the full fermionic architecture, but they will de-risk the hardest experimental steps before the costly isotope is committed.

Anyone worried that a quantum computer might worsen the world’s helium shortages can rest easy. Covey pointed out that the early experiments will have no impact on global helium-4 supplies, and the arithmetic is striking: two grams of helium, roughly enough to fill a single party balloon, contains a number of atoms that is a three followed by twenty-three zeroes. What the team ultimately wants is only tens of atoms, and a five-liter tank of helium, Covey noted, can last the lab for many years. The contrast between the scale of the ambition and the modesty of the material requirements is part of what makes the proposal so striking. If the team succeeds in suspending single fermionic helium atoms in beams of light over the next couple of years, the lightest trappable atom in the universe may find itself at the center of one of the most consequential technologies of the century, trading its party-trick reputation for a role in machines that compute with the strange rules of quantum mechanics itself.

Subject of Research: A proposed quantum computing architecture using laser-trapped metastable helium-3 atoms for fermionic quantum simulation

Article Title: Helium lifts new quantum computing concept

Article References: Helium lifts new quantum computing concept. (n.d.). Original publication

Image Credits: AI Generated

DOI: Not provided

Keywords: helium-3, quantum computing, optical tweezers, fermions, metastable atoms, laser cooling, qubits, quantum tunneling, neutral atoms, PRX Quantum, University of Chicago, quantum simulation

Cite Scienmag News

Katie Riggs. (October 5, 2026). Helium-3 Atoms Held in Laser Tweezers Point to Faster, More Stable Quantum Computers. Scienmag. https://scienmag.com/helium-3-atoms-held-in-laser-tweezers-point-to-faster-more-stable-quantum-computers/

Katie Riggs. "Helium-3 Atoms Held in Laser Tweezers Point to Faster, More Stable Quantum Computers." Scienmag, 5 October 2026, https://scienmag.com/helium-3-atoms-held-in-laser-tweezers-point-to-faster-more-stable-quantum-computers/. Accessed 5 October 2026.

Katie Riggs. "Helium-3 Atoms Held in Laser Tweezers Point to Faster, More Stable Quantum Computers." Scienmag. October 5, 2026. https://scienmag.com/helium-3-atoms-held-in-laser-tweezers-point-to-faster-more-stable-quantum-computers/

Tags: advancements in quantum computing platformserror resistance in helium-based quantum systemsfermionsfocused laser beams for atom controlhelium-3helium-3 atom trapping techniqueshelium-3 atoms in quantum computinglaser coolinglaser tweezers for atom manipulationlow-mass atom advantages in quantum techmetastable atomsneutral atomsoptical tweezersoptical tweezers in quantum physicsPRX QuantumQuantum Computingquantum hardware using helium atomsquantum information processing with helium atomsQuantum simulationquantum tunnelingqubitssecond-lightest element applications in quantum computingstable quantum computers using helium-3University of Chicago
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