Radio-frequency ion traps provide ideal conditions for storing and manipulating single particles and localize them with a precision far below their resonance wavelength. By combining an optical cavity with the excellent position control provided by the trap, we have implemented a completely deterministic coupling of ions and the electromagnetic field. In this system we can investigate single-particle cavity QED dynamics with a predefined interaction strength and interaction time, which is not possible in atom-based systems
We investigate the coupling of a single trapped ion to a miniature optical cavity operating in the u...
We report a novel miniature Paul ion trap design with an integrated optical fibre cavity which can s...
Recent realizations of single-atom trapping and tracking in cavity QED open the door for feedback sc...
We have employed radio-frequency trapping to localize a single 40Ca+-ion in a high-finesse optical c...
Single atoms are trapped via strong coupling to single-photon fields in optical cavity QED. Properti...
Single atoms are trapped via strong coupling to single-photon fields in optical cavity QED. Properti...
Precise control over internal states of atomic ions in ion traps has been possible for many years en...
Cavity quantum electrodynamics (QED) offers powerful possibilities for the deterministic control of ...
Many of the current efforts to control the dynamics of individual quantum systems take place within ...
Two recent experiments are discussed which demonstrate real-time trapping and monitoring of single a...
Strong coupling between an atom and an electromagnetic resonator is an important condition in cavity...
Recent technological advances in cavity quantum electrodynamics (CQED) are paving the way to utilize...
We propose a class of experiments using rotational states of dipolar molecular ions trapped near an ...
The development of laser cooling coupled with the ability to trap atoms and ions in electromagnetic ...
We report a novel miniature Paul ion trap design with an integrated optical fibre cavity which can s...
We investigate the coupling of a single trapped ion to a miniature optical cavity operating in the u...
We report a novel miniature Paul ion trap design with an integrated optical fibre cavity which can s...
Recent realizations of single-atom trapping and tracking in cavity QED open the door for feedback sc...
We have employed radio-frequency trapping to localize a single 40Ca+-ion in a high-finesse optical c...
Single atoms are trapped via strong coupling to single-photon fields in optical cavity QED. Properti...
Single atoms are trapped via strong coupling to single-photon fields in optical cavity QED. Properti...
Precise control over internal states of atomic ions in ion traps has been possible for many years en...
Cavity quantum electrodynamics (QED) offers powerful possibilities for the deterministic control of ...
Many of the current efforts to control the dynamics of individual quantum systems take place within ...
Two recent experiments are discussed which demonstrate real-time trapping and monitoring of single a...
Strong coupling between an atom and an electromagnetic resonator is an important condition in cavity...
Recent technological advances in cavity quantum electrodynamics (CQED) are paving the way to utilize...
We propose a class of experiments using rotational states of dipolar molecular ions trapped near an ...
The development of laser cooling coupled with the ability to trap atoms and ions in electromagnetic ...
We report a novel miniature Paul ion trap design with an integrated optical fibre cavity which can s...
We investigate the coupling of a single trapped ion to a miniature optical cavity operating in the u...
We report a novel miniature Paul ion trap design with an integrated optical fibre cavity which can s...
Recent realizations of single-atom trapping and tracking in cavity QED open the door for feedback sc...