We demonstrate a cavity-based solution to scale up experiments with ultracold atoms in optical lattices by an order of magnitude over state-of-the-art free space lattices. Our two-dimensional optical lattices are created by power enhancement cavities with large mode waists of 489(8) $\mu$m and allow us to trap ultracold strontium atoms at a lattice depth of 60 $\mu$K by using only 80 mW of input light per cavity axis. We characterize these lattices using high-resolution clock spectroscopy and resolve carrier transitions between different vibrational levels. With these spectral features, we locally measure the lattice potential envelope and the sample temperature with a spatial resolution limited only by the optical resolution of the imaging...
We study an ultracold gas of neutral atoms subject to the periodic optical potential generated by a ...
We report on the realization and characterization of optical potentials for ultracold atoms using a ...
The study of ultracold molecules tightly trapped in an optical lattice can expand the frontier of pr...
We demonstrate a cavity-based solution to scale up experiments with ultracold atoms in optical latti...
We study the trap depth requirement for the realization of an optical clock using atoms confined in ...
This dissertation details the construction of a neutral ultracold atom system along with one complet...
Quantum simulation with cold atoms in optical lattices is an attractive avenue for explorations of q...
Atomic clocks known as optical clocks are more accurate and stable than current timekeepers. Two qua...
We make a detailed analysis of error mechanisms, gate fidelity, and scalability of proposals for qua...
This is the final version. Available on open access from Nature Research via the DOI in this recordD...
Strontium optical lattice clocks at JILA recently demonstrated record-high accuracy and stability. T...
We realize a two-stage, hexagonal pyramid magneto-optical trap (MOT) with strontium, and demonstrate...
Ultracold neutral atoms confined in optical dipole traps have important applications in quantum comp...
Unlike photons, which are conveniently handled by mirrors and optical fibres without loss of coheren...
Precise knowledge of optical lattice depths is important for a number of areas of atomic physics, mo...
We study an ultracold gas of neutral atoms subject to the periodic optical potential generated by a ...
We report on the realization and characterization of optical potentials for ultracold atoms using a ...
The study of ultracold molecules tightly trapped in an optical lattice can expand the frontier of pr...
We demonstrate a cavity-based solution to scale up experiments with ultracold atoms in optical latti...
We study the trap depth requirement for the realization of an optical clock using atoms confined in ...
This dissertation details the construction of a neutral ultracold atom system along with one complet...
Quantum simulation with cold atoms in optical lattices is an attractive avenue for explorations of q...
Atomic clocks known as optical clocks are more accurate and stable than current timekeepers. Two qua...
We make a detailed analysis of error mechanisms, gate fidelity, and scalability of proposals for qua...
This is the final version. Available on open access from Nature Research via the DOI in this recordD...
Strontium optical lattice clocks at JILA recently demonstrated record-high accuracy and stability. T...
We realize a two-stage, hexagonal pyramid magneto-optical trap (MOT) with strontium, and demonstrate...
Ultracold neutral atoms confined in optical dipole traps have important applications in quantum comp...
Unlike photons, which are conveniently handled by mirrors and optical fibres without loss of coheren...
Precise knowledge of optical lattice depths is important for a number of areas of atomic physics, mo...
We study an ultracold gas of neutral atoms subject to the periodic optical potential generated by a ...
We report on the realization and characterization of optical potentials for ultracold atoms using a ...
The study of ultracold molecules tightly trapped in an optical lattice can expand the frontier of pr...