Improving efficiency of Bloch oscillations in the tight-binding limit
Pierre Cladé, M. Andia, Saïda Guellati-Khélifa
Abstract
Pierre Cladé, M. Andia, Saïda Guellati-Khélifa
Abstract
Bloch oscillations of atoms in an optical lattice are a technique commonly used to accelerate atoms using photon recoils. The initial atomic state is crucial for optimizing the efficiency of the acceleration. Usually, a Bloch state is prepared by adiabatically loading atoms into the lattice. In this paper, using numerical simulations, we show that the optimal state (the Wannier-Bloch state) can significantly differ from the Bloch state. Furthermore, two experimental methods are presented in order to get closer to the optimal efficiency.
OpenAlex reports 9 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
Bloch oscillations of atoms in an optical lattice are a technique commonly used to accelerate atoms using photon recoils. The initial atomic state is crucial for optimizing the efficiency of the acceleration. Usually, a Bloch state is prepared by adiabatically loading atoms into the lattice. In this paper, using numerical simulations, we show that the optimal state (the Wannier-Bloch state) can significantly differ from the Bloch state. Furthermore, two experimental methods are presented in order to get closer to the optimal efficiency.
Key concepts: Bloch oscillations, Bloch wave, Optical lattice, Lattice (music), Photon, Physics, Limit (mathematics), Periodic potential