The Baryon Antibaryon Symmetry Experiment (BASE) aims at performing a stringent test of the combined charge parity and time reversal (CPT) symmetry by comparing the magnetic moments of the proton and the antiproton with high precision. Using single particles in a Penning trap, the proton/antiproton g-factors, i.e. the magnetic moment in units of the nuclear magneton, are determined by measuring the respective ratio of the spin-precession frequency to the cyclotron frequency. The spin precession frequency is measured by non-destructive detection of spin quantum transitions using the continuous Stern-Gerlach effect, and the cyclotron frequency is determined from the particle*s motional eigenfrequencies in the Penning trap using the invariance...
One of the fundamental properties of the proton is its magnetic moment, µp. So far µp has been measu...
Our current understanding of the Universe comes, among others, from particle physics and cosmology. ...
The antiproton $(\bar{p})$ magnetic moment $\mu \bar{p} = \mu_{\bar{p}} S/(\bar{h}/2)$ is proportion...
The Baryon Antibaryon Symmetry Experiment (BASE) aims at performing a stringent test of the combined...
The Baryon Antibaryon Symmetry Experiment (BASE) aims at performing a stringent test of the combined...
The Baryon Antibaryon Symmetry Experiment (BASE-CERN) at CERN’s antiproton decelerator facility is a...
Recent exciting progress in the preparation and manipulation of the motional quantum states of a sin...
The recent observation of single spins flips with a single proton in a Penning trap opens the way to...
We summarize our recent 1.5 parts per billion measurement of the antiproton magnetic moment using th...
A comparison of the magnetic moments of the proton and the antiproton provides a sensitive test of m...
The BASE collaboration investigates the fundamental properties of protons and antiprotons, such as c...
Charge, Parity and Time (CPT) symmetry is known to be one of the most fundamental symmetries of the ...
This report outlines the future program of the BASE antiproton experiment at the Antiproton Decelera...
Precision measurements comparing the fundamental properties of conjugate particles and antiparticles...
This thesis describes high precision measurements on the fundamental properties of the antiproton, n...
One of the fundamental properties of the proton is its magnetic moment, µp. So far µp has been measu...
Our current understanding of the Universe comes, among others, from particle physics and cosmology. ...
The antiproton $(\bar{p})$ magnetic moment $\mu \bar{p} = \mu_{\bar{p}} S/(\bar{h}/2)$ is proportion...
The Baryon Antibaryon Symmetry Experiment (BASE) aims at performing a stringent test of the combined...
The Baryon Antibaryon Symmetry Experiment (BASE) aims at performing a stringent test of the combined...
The Baryon Antibaryon Symmetry Experiment (BASE-CERN) at CERN’s antiproton decelerator facility is a...
Recent exciting progress in the preparation and manipulation of the motional quantum states of a sin...
The recent observation of single spins flips with a single proton in a Penning trap opens the way to...
We summarize our recent 1.5 parts per billion measurement of the antiproton magnetic moment using th...
A comparison of the magnetic moments of the proton and the antiproton provides a sensitive test of m...
The BASE collaboration investigates the fundamental properties of protons and antiprotons, such as c...
Charge, Parity and Time (CPT) symmetry is known to be one of the most fundamental symmetries of the ...
This report outlines the future program of the BASE antiproton experiment at the Antiproton Decelera...
Precision measurements comparing the fundamental properties of conjugate particles and antiparticles...
This thesis describes high precision measurements on the fundamental properties of the antiproton, n...
One of the fundamental properties of the proton is its magnetic moment, µp. So far µp has been measu...
Our current understanding of the Universe comes, among others, from particle physics and cosmology. ...
The antiproton $(\bar{p})$ magnetic moment $\mu \bar{p} = \mu_{\bar{p}} S/(\bar{h}/2)$ is proportion...