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Particles Seen Emerging From Empty Space For First Time

著者: BeauHD
2026年4月10日 16:00

🤖 AI Summary

量子 Chromodynamics(QCD)によると、完全な真空でも実質的には空ではない。空間の基礎的なエネルギーに瞬時的に現れ消失する仮想粒子が存在し、その中には夸克と反夸克のペアも含まれる。通常はこれらのペアは短命でほとんどすぐに姿を消す。しかし十分なエネルギーを注入すれば、実在し検出可能な粒子へ変化すると予測される。

ニューヨーク州ブロ被誉国家ルネーザ・ハイエロン子原子 Collider の STAR コラボレーションが、この過程を初めて観察に成功した。高エネルギーの proton による衝突で粒子が放出され、その中には真空から直接抽出された夸克と反夸克のペアも含まれる。夸克は常に複合粒子として存在し、生じた夸克と反夸克は真空から引き継いだ量子的揃い合いを持ち続ける。研究人员发现这些关联即使夸克和反夸克结合成超子后仍然存在,超子在十亿分之一秒内即会衰变。

この研究結果により、これらの超子の夸克が真空から来ていることが確認された。その研究成果は Nature に発表されている。
Longtime Slashdot reader fahrbot-bot shares a report from NewScientist: According to quantum chromodynamics (QCD) -- widely considered to be our best theory for describing the strong force, which binds quarks inside protons and neutrons -- even a perfect vacuum isn't truly empty. Instead, it is filled with short-lived disturbances in the underlying energy of space that flicker in and out of existence, known as virtual particles. Among them are quark-antiquark pairs. Under normal conditions, these fleeting pairs vanish almost as soon as they appear. But if enough energy is injected into a vacuum, QCD predicts they can be promoted into real, detectable particles with measurable mass. Now, the STAR collaboration -- an international team of physicists working at the Relativistic Heavy Ion Collider in Brookhaven National Laboratory in New York state -- has observed this process for the first time. The team smashed together high-energy protons in a vacuum, producing a spray of particles. Some of these particles should be quark-antiquark pairs pulled directly from the vacuum itself, but quarks can never exist alone and immediately combine into composite particles. Quarks and antiquarks are born with their spins correlated -- a shared quantum alignment inherited from the vacuum. The researchers found that this link persists even after the quarks and antiquarks become part of larger particles called hyperons, which decay in less than a tenth of a billionth of a second. Spotting these spin-aligned hyperons in the aftermath of the proton collisions allowed the researchers to confirm that the quarks within them came from the vacuum. The findings have been published in the journal Nature.

Read more of this story at Slashdot.

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