Quantum sensors based on coherent matter-waves are precise measurement devices whose ultimate accuracy is achieved with Bose–Einstein condensates (BECs) in extended free fall. This is ideally realized in microgravity environments such as drop towers, ballistic rockets and space platforms. However, the transition from lab-based BEC machines to robust and mobile sources with comparable performance is a challenging endeavor. Here we report on the realization of a miniaturized setup, generating a flux of $4\times {{10}^{5}}$ quantum degenerate 87Rb atoms every 1.6 s. Ensembles of $1\times {{10}^{5}}$ atoms can be produced at a 1 Hz rate. This is achieved by loading a cold atomic beam directly into a multi-layer atom chip that is designed for ef...
Quantum sensors based on atomic interferometry are becoming valued tools for precision measurements ...
A growing subfield of atomic physics is focused on the miniaturization of Bose-Einstein condensate (...
© 2019, The Author(s), under exclusive licence to Springer Nature Limited. Some of the most sensitiv...
Quantum sensors based on coherent matter-waves are precise measurement devices whose ultimate accura...
In the past century, the development of gravimeters with low uncertainty and long-term stability has...
Ultracold atomic ensembles represent a cornerstone of today’s modern quantum experiments. In particu...
Quantum technologies are on the rise to change our daily life and thinking triggered by enormous adv...
Quantum sensors based on the interference of cold atoms have advanced to the forefront of precision ...
Quantum sensors based on light pulse atom interferometers allow for measurements of inertial and ele...
Atom chips are an excellent tool for studying ultracold degenerate quantum gases, due to the high de...
Modern physics is challenged by existential questions about the most fundamental interactions of mat...
We have fabricated and tested an atom chip that operates as a matter wave interferometer. In this co...
Atom interferometry has shown its interest for high precision measurements, such as inertial sensors...
The ongoing drive to transfer quantum technologies from research laboratories to practical, portable...
Tesis doctoral inédita leída en la Universidad Autónoma de Madrid. Facultad de Ciencias, Departament...
Quantum sensors based on atomic interferometry are becoming valued tools for precision measurements ...
A growing subfield of atomic physics is focused on the miniaturization of Bose-Einstein condensate (...
© 2019, The Author(s), under exclusive licence to Springer Nature Limited. Some of the most sensitiv...
Quantum sensors based on coherent matter-waves are precise measurement devices whose ultimate accura...
In the past century, the development of gravimeters with low uncertainty and long-term stability has...
Ultracold atomic ensembles represent a cornerstone of today’s modern quantum experiments. In particu...
Quantum technologies are on the rise to change our daily life and thinking triggered by enormous adv...
Quantum sensors based on the interference of cold atoms have advanced to the forefront of precision ...
Quantum sensors based on light pulse atom interferometers allow for measurements of inertial and ele...
Atom chips are an excellent tool for studying ultracold degenerate quantum gases, due to the high de...
Modern physics is challenged by existential questions about the most fundamental interactions of mat...
We have fabricated and tested an atom chip that operates as a matter wave interferometer. In this co...
Atom interferometry has shown its interest for high precision measurements, such as inertial sensors...
The ongoing drive to transfer quantum technologies from research laboratories to practical, portable...
Tesis doctoral inédita leída en la Universidad Autónoma de Madrid. Facultad de Ciencias, Departament...
Quantum sensors based on atomic interferometry are becoming valued tools for precision measurements ...
A growing subfield of atomic physics is focused on the miniaturization of Bose-Einstein condensate (...
© 2019, The Author(s), under exclusive licence to Springer Nature Limited. Some of the most sensitiv...