We demonstrate cooling of 10^4 antiprotons in a dense, cold plasma of ∼10^8 positrons, confined in a nested cylindrical Penning trap at about 15 K. The time evolution of the cooling process has been studied in detail, and several distinct types of behavior identified. We propose explanations for these observations and discuss the consequences for antihydrogen production. We contrast these results with observations of interactions between antiprotons and “hot” positrons at about 3000 K, where antihydrogen production is strongly suppressed
We demonstrate temporally controlled modulation of cold antihydrogen production by periodic RF heati...
Sustained advances in the trapping of positrons and antiprotons led to the recent creation of cold a...
The positron, the antiparticle of the electron, predicted by Dirac in 1931 and discovered by Anderso...
We demonstrate cooling of 10^4 antiprotons in a dense, cold plasma of ∼10^8 positrons, confined in a...
A new physical mechanism for positron accumulation is explained and demonstrated. Strongly magnetize...
Antihydrogen is now routinely produced at CERN by overlapping clouds of positrons and antiprotons. T...
Positrons are used to cool antiprotons for the first time. The oppositely charged positrons and anti...
Antihydrogen is formed when antiprotons are mixed with cold positrons in a nested Penning trap. We ...
Low energy antiprotons and cold positrons are stored together and observed to interact for the first...
Only our ATRAP Collaboration is yet able to accumulate and store 4.2 K antiprotons and positrons. Th...
Production of cold antihydrogen in electromagnetic traps by mixing of antiprotons and positrons has...
The production and study of cold antihydrogen will require the manipulation of dense and cold, singl...
Cold antihydrogen atoms were produced by mixing cold samples of antiprotons and positrons. The tempe...
Antihydrogen, the bound state of a positron and an antiproton, is the only neutral pure antimatter s...
Recombination of antiprotons with positrons (into neutral antihydrogen) in a strong magnetic field i...
We demonstrate temporally controlled modulation of cold antihydrogen production by periodic RF heati...
Sustained advances in the trapping of positrons and antiprotons led to the recent creation of cold a...
The positron, the antiparticle of the electron, predicted by Dirac in 1931 and discovered by Anderso...
We demonstrate cooling of 10^4 antiprotons in a dense, cold plasma of ∼10^8 positrons, confined in a...
A new physical mechanism for positron accumulation is explained and demonstrated. Strongly magnetize...
Antihydrogen is now routinely produced at CERN by overlapping clouds of positrons and antiprotons. T...
Positrons are used to cool antiprotons for the first time. The oppositely charged positrons and anti...
Antihydrogen is formed when antiprotons are mixed with cold positrons in a nested Penning trap. We ...
Low energy antiprotons and cold positrons are stored together and observed to interact for the first...
Only our ATRAP Collaboration is yet able to accumulate and store 4.2 K antiprotons and positrons. Th...
Production of cold antihydrogen in electromagnetic traps by mixing of antiprotons and positrons has...
The production and study of cold antihydrogen will require the manipulation of dense and cold, singl...
Cold antihydrogen atoms were produced by mixing cold samples of antiprotons and positrons. The tempe...
Antihydrogen, the bound state of a positron and an antiproton, is the only neutral pure antimatter s...
Recombination of antiprotons with positrons (into neutral antihydrogen) in a strong magnetic field i...
We demonstrate temporally controlled modulation of cold antihydrogen production by periodic RF heati...
Sustained advances in the trapping of positrons and antiprotons led to the recent creation of cold a...
The positron, the antiparticle of the electron, predicted by Dirac in 1931 and discovered by Anderso...