We describe the fabrication and construction of a setup for creating lattices of magnetic microtraps for ultracold atoms on an atom chip. The lattice is defined by lithographic patterning of a permanent magnetic film. Patterned magnetic-film atom chips enable a large variety of trapping geometries over a wide range of length scales. We demonstrate an atom chip with a lattice constant of 10 μm, suitable for experiments in quantum information science employing the interaction between atoms in highly excited Rydberg energy levels. The active trapping region contains lattice regions with square and hexagonal symmetry, with the two regions joined at an interface. A structure of macroscopic wires, cutout of a silver foil, was mounted under the at...
We review recent developments in the use of magnetic lattices as a complementary tool to optical lat...
In the context of quantum simulation and quantum information, steps were made to push forward the st...
Ultracold atoms can be manipulated using microfabricated devices known as atom chips. These have sig...
We describe the fabrication and construction of a setup for creating lattices of magnetic microtraps...
We describe the fabrication and construction of a setup for creating lattices of magnetic microtraps...
We report on the loading and trapping of ultracold atoms in a one-dimensional permanent magnetic lat...
We present two different strategies for developing a quantum information science platform, based on ...
Arrays of trapped atoms are the ideal starting points for developing registers comprising large numb...
We report on the storage and manipulation of hundreds of mesoscopic ensembles of ultracold 87Rb atom...
We have designed and realized magnetic trapping geometries for ultracold atoms based on permanent ma...
We introduce a general method for designing tailored lattices of magnetic microtraps for ultracold a...
This thesis contributes to the quantum platform based on an atom chip. In our atom chip, atoms are t...
doi:10.1088/1367-2630/11/2/023021 Abstract. Arrays of trapped atoms are the ideal starting points fo...
With a permanent magnetic-film atom chip we load clouds of ultracold 87Rb atoms in a lattice of micr...
We report on recent experiments with BECs and ultracold atoms in magnetic microtraps created by magn...
We review recent developments in the use of magnetic lattices as a complementary tool to optical lat...
In the context of quantum simulation and quantum information, steps were made to push forward the st...
Ultracold atoms can be manipulated using microfabricated devices known as atom chips. These have sig...
We describe the fabrication and construction of a setup for creating lattices of magnetic microtraps...
We describe the fabrication and construction of a setup for creating lattices of magnetic microtraps...
We report on the loading and trapping of ultracold atoms in a one-dimensional permanent magnetic lat...
We present two different strategies for developing a quantum information science platform, based on ...
Arrays of trapped atoms are the ideal starting points for developing registers comprising large numb...
We report on the storage and manipulation of hundreds of mesoscopic ensembles of ultracold 87Rb atom...
We have designed and realized magnetic trapping geometries for ultracold atoms based on permanent ma...
We introduce a general method for designing tailored lattices of magnetic microtraps for ultracold a...
This thesis contributes to the quantum platform based on an atom chip. In our atom chip, atoms are t...
doi:10.1088/1367-2630/11/2/023021 Abstract. Arrays of trapped atoms are the ideal starting points fo...
With a permanent magnetic-film atom chip we load clouds of ultracold 87Rb atoms in a lattice of micr...
We report on recent experiments with BECs and ultracold atoms in magnetic microtraps created by magn...
We review recent developments in the use of magnetic lattices as a complementary tool to optical lat...
In the context of quantum simulation and quantum information, steps were made to push forward the st...
Ultracold atoms can be manipulated using microfabricated devices known as atom chips. These have sig...