论文标题
$ 2S_ {1/2},f $ = $ 0 \ rightarrow 2p_ {1/2},f $ = $ 1 $过渡
Measurement of the $2S_{1/2},F$=$0 \rightarrow 2P_{1/2},F$=$1$ transition in Muonium
论文作者
论文摘要
自发现以来,穆恩斯(Muons)首先被认为是尤卡瓦(Yukawa)预测强大力量的梅森(Meson)时,令人困惑的是物理学家。 Fermilab在MUON G-2异常上的最新结果使Muonic部门再次成为人们关注的焦点,并呼吁使用这种引人入胜的粒子进行新的测量。在这里,我们介绍了$ 2S_ {1/2},f $ = $ 0 \ rightArrow 2p_ {1/2},f $ = $ 1 $在Muonium的过渡,这是正值正值和电子的氢状界面状态。 580.6 $ \ pm $ 6.8 MHz的测量值与理论计算一致。通过此测量,提取了1045.5 $ \ pm $ 6.8 MHz的羔羊移位值,与以前的实验兼容。我们还首次确定Muonium的2s $ $超精美分裂为559.6 $ \ pm $ 7.2 MHz。从其他超精细水平分离出的测得的过渡有望在可以测试氢气中无法访问氢量后的后坐力校正水平的水平上改善对蒙姆羔羊移动的确定。这种测量也将对Muonic部门的新物理学敏感,例如对于可能提供G-2 MUON异常或Lorentz和CPT违规的新玻色子。我们还介绍了$ n = 3 $激发态在氢气中实现新的精确微波测量的可能性的首次观察。
Muons are puzzling physicists since their discovery when they were first thought to be the meson predicted by Yukawa to mediate the strong force. The recent results at Fermilab on the muon g-2 anomaly puts the muonic sector once more under the spotlight and calls for new measurements with this fascinating particle. Here we present the results of the first measurement of the $2S_{1/2},F$=$0 \rightarrow 2P_{1/2},F$=$1$ transition in Muonium, the hydrogen-like bound state of a positive muon and an electron. The measured value of 580.6 $\pm$6.8 MHz is in agreement with the theoretical calculations. From this measurement a value of the Lamb shift of 1045.5 $\pm$6.8 MHz is extracted, compatible with previous experiments. We also determine for the first time the $2S$ hyperfine splitting in Muonium to be 559.6$\pm$7.2 MHz. The measured transition being isolated from the other hyperfine levels holds the promise to provide an improved determination of the Muonium Lamb shift at a level where bound state QED recoil corrections not accessible in hydrogen could be tested. Such a measurement will also be sensitive to new physics in the muonic sector, e.g. to new bosons which might provide an explanation of the g-2 muon anomaly or Lorentz and CPT violation. We also present the first observation of Muonium in the $n = 3$ excited state opening up the possibility of new precise microwave measurements as realized in hydrogen.