Over the past three years we have developed the technique of buffer-gas cooling and loading of atoms and molecules into magnetic traps. Buffer-gas cooling relies solely on elastic collisions (thermalization) of the species-to-be-trapped with a cryogenically cooled helium gas and so is independent of any particular energy level pattern. This makes the cooling technique general and potentially applicable to any species trappable at the temperature of the buffer gas (as low as $240 \mathrm{mK}$). Using buffer-gas loading, paramagnetic atoms (europium and chromium) as well as a molecule (calcium monohydride) were trapped at temperatures around 300 mK. The numbers of the trapped atoms and molecules were respectively about 1012 and 108. The atom...
The ability to cool and slow atoms with light for subsequent trapping(1-3) allows investigations of ...
We describe techniques for creating long-lived magneto-optical and magnetostatic traps for neutral a...
We observe magnetic trapping of atomic nitrogen (N14) and cotrapping of ground-state imidogen (N14H,...
We describe a method for loading paramagnetic atoms or molecules into a magnetic trap. A 3He buffer ...
We report the successful buffer-gas cooling and magnetic trapping of chromium atoms with densities e...
Achieving precise control over an array of ultracold molecules would provide a unique tool-set for c...
We have extended buffer gas cooling to trap atoms with small effective magnetic moments µeff . For µ...
We report on the buffer-gas cooling and trapping of CrH and MnH molecules in a magnetic quadrupole t...
Buffer gas cooling is used to trap NH molecules with 1/e lifetimes exceeding 20 s. Helium vapor gene...
We observe magnetic trapping of atomic nitrogen (N14) and cotrapping of ground-state imidogen (N14 H...
A detailed experimental and theoretical investigation of a magneto-optical trap for caesium atoms is...
Cryogenic buffer gas cooled beams and cells can be used to study many species, from atoms and polar ...
The preparation of cold molecules is of great importance in many contexts, such as fundamental physi...
We report the magnetic trapping and evaporative cooling of bosonic and fermionic isotopes of atomic ...
We have evaporatively cooled caesium atoms in a magnetic trap to temperatures as low as 8 nK and pro...
The ability to cool and slow atoms with light for subsequent trapping(1-3) allows investigations of ...
We describe techniques for creating long-lived magneto-optical and magnetostatic traps for neutral a...
We observe magnetic trapping of atomic nitrogen (N14) and cotrapping of ground-state imidogen (N14H,...
We describe a method for loading paramagnetic atoms or molecules into a magnetic trap. A 3He buffer ...
We report the successful buffer-gas cooling and magnetic trapping of chromium atoms with densities e...
Achieving precise control over an array of ultracold molecules would provide a unique tool-set for c...
We have extended buffer gas cooling to trap atoms with small effective magnetic moments µeff . For µ...
We report on the buffer-gas cooling and trapping of CrH and MnH molecules in a magnetic quadrupole t...
Buffer gas cooling is used to trap NH molecules with 1/e lifetimes exceeding 20 s. Helium vapor gene...
We observe magnetic trapping of atomic nitrogen (N14) and cotrapping of ground-state imidogen (N14 H...
A detailed experimental and theoretical investigation of a magneto-optical trap for caesium atoms is...
Cryogenic buffer gas cooled beams and cells can be used to study many species, from atoms and polar ...
The preparation of cold molecules is of great importance in many contexts, such as fundamental physi...
We report the magnetic trapping and evaporative cooling of bosonic and fermionic isotopes of atomic ...
We have evaporatively cooled caesium atoms in a magnetic trap to temperatures as low as 8 nK and pro...
The ability to cool and slow atoms with light for subsequent trapping(1-3) allows investigations of ...
We describe techniques for creating long-lived magneto-optical and magnetostatic traps for neutral a...
We observe magnetic trapping of atomic nitrogen (N14) and cotrapping of ground-state imidogen (N14H,...