Published · 3d agoScience3 min read
ALICE made primordial matter from oxygen and neon, so the lead-on-lead assumption is negotiable
Colliding oxygen-16 and neon-20 produced quark-gluon plasma, and the outgoing particles carried the shape of the incoming nuclei. Light-ion runs now buy two results at once.
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What happened
- Researchers from the Niels Bohr Institute, together with colleagues from the international ALICE collaboration at CERN in Switzerland, carried out the experiment.
- Physicists from the Niels Bohr Institute succeeded in creating the primordial matter by smashing the much smaller nuclei of oxygen-16 and neon-20 together.
- For many years, scientists assumed that creating quark-gluon plasma required collisions between very heavy atomic nuclei such as lead.
- At CERN, researchers can make atomic nuclei collide at almost the speed of light.
- These collisions create tiny droplets of the primordial matter that filled the universe during its first millionth of a second.
Compiled by The ScientistSomething wrong?How this is made
Why it matters
Physicists from the Niels Bohr Institute, working within the ALICE collaboration at CERN, produced quark-gluon plasma by colliding the small nuclei of oxygen-16 and neon-20 rather than heavy nuclei [1][2]. For years the working assumption was that making the plasma required collisions between very heavy nuclei such as lead [3], so the result matters mainly as a change in what a run has to be built around.
The physics is unchanged in outline. Nuclei are collided at almost the speed of light, and their constituents turn into a droplet of the matter that filled the universe during its first millionth of a second [4][5]. The droplet lasts a tiny fraction of a second and then expands, and it cannot be observed directly; what gets measured is the particles the matter turns into shortly afterward [6][7]. Quark-gluon plasma is thought to have been the earliest form of matter [8].
The second finding is the more useful one for planning. The movement pattern of the outgoing particles reflects the geometry of the colliding nucleus: oxygen on oxygen gives a more rounded pattern, while collisions involving neon give a bowling-pin-shaped pattern [9]. Postdoctoral researcher Emil Gorm Dahlbæk Nielsen, a coauthor, compares it to shining light on an object and reading its shadow, since the object itself stays invisible [10]. Note the resolution implied here: neon-20 carries only 25 percent more nucleons than oxygen-16, and that difference in nuclear shape shows up in the particle flow [11].
That is why the beam-time arithmetic shifts. A light-ion run that previously would have been treated as a control or a reference now returns plasma physics and nuclear structure from the same data. Nuclear shape is not decoration: it reveals how protons and neutrons are organized and carries information about the strong force, one of the four fundamental forces [12]. Until now nuclear structure has mostly been probed at low energies, for instance through the rotation and vibration of nuclei [13]. You Zhou, the associate professor who led the experiment and until recently worked at the Niels Bohr Institute at the University of Copenhagen, frames the alternative bluntly: smash nuclei at the highest available energies and read their shape from the imprint left behind [14][15]. He also states the boundary result directly, that the team pushed how small the nuclei can be while still recreating the primordial matter [16]. The question of nuclear shape has occupied physicists for more than 70 years, and Aage Bohr's work on nuclear structure won the 1975 Nobel Prize in Physics at the same institute [17][18].
What to watch. The results are published in Physical Review Letters [19], and the researchers themselves describe the approach only as a possible paradigm shift [20], which is the correct hedge until other groups reproduce shape extraction in other species. The source material does not say how much smaller a system can go before the plasma signal disappears, does not compare the precision of this method with low-energy spectroscopy, and does not price the beam time. Those three gaps are what determine whether light-ion runs get scheduled on their own merits or stay attached to heavy-ion programmes.
Claim ledger
Ranked by verification strength, evidence, and original report placement.
- [1]
Researchers from the Niels Bohr Institute, together with colleagues from the international ALICE collaboration at CERN in Switzerland, carried out the experiment.
ReportedView cited source - [2]
Physicists from the Niels Bohr Institute succeeded in creating the primordial matter by smashing the much smaller nuclei of oxygen-16 and neon-20 together.
ReportedView cited source - [3]
For many years, scientists assumed that creating quark-gluon plasma required collisions between very heavy atomic nuclei such as lead.
ReportedView cited source - [4]
At CERN, researchers can make atomic nuclei collide at almost the speed of light.
ReportedView cited source - [5]
These collisions create tiny droplets of the primordial matter that filled the universe during its first millionth of a second.
ReportedView cited source - [6]
When the nuclei collide, their constituents are transformed into a tiny droplet of quark-gluon plasma that exists for a tiny fraction of a second and then expands.
ReportedView cited source
Sources & coverage · 3 publishers
The reporting this story was synthesized from, earliest first. Every link goes to the original.
- phys.org3d agoA little Big Bang: Bowling-pin-shaped nuclei shed new light on the universe's first moments
Cited in this coverage: Emil Gorm Dahlbæk Nielsen, Niels Bohr Institute, quoted by phys.org
Cited in this coverage: You Zhou, quoted by phys.org
Cited in this coverage: the researchers, per phys.org
- discovermagazine.comyesterdayHigh-Speed Particle Smashing Recreates Primordial Soup Droplets From the Universe's First Moments


