Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low energy. These experiments are competitive with and complementary to high-energy collider experiments. The APV signal is strongly enhanced in heavy atoms and it is measurable by exciting suppressed (M1, E2) transitions. The status of APV experiments and theory are reviewed as well as the prospects of an APV experiment using one single trapped Ra+ ion. The predicted enhancement factor of the APV effect in Ra+ is about 50 times larger than in Cs atoms. However, certain spectroscopic information on Ra+ needed to constrain the required atomic many-body theory, was lacking. Using the AGOR cyclotron and the TRIμP facility at KVI in Groningen, short...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
A single trapped Ra + (Z = 88) ion provides a very promising route towards a most precise measureme...
A single trapped Ra + (Z = 88) ion provides a very promising route towards a most precise measureme...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
A single trapped Ra + (Z = 88) ion provides a very promising route towards a most precise measureme...
A single trapped Ra + (Z = 88) ion provides a very promising route towards a most precise measureme...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
Atomic parity violation (APV) experiments are sensitive probes of the electroweak interaction at low...
A single trapped Ra + (Z = 88) ion provides a very promising route towards a most precise measureme...
A single trapped Ra + (Z = 88) ion provides a very promising route towards a most precise measureme...