The ASACUSA collaboration produces a beam of antihydrogen atoms by mixing pure positron and antiproton plasmas in a strong magnetic field with a double cusp geometry. The positrons cool via cyclotron radiation inside the cryogenic trap. Low positron temperature is essential for increasing the fraction of antihydrogen atoms which reach the ground state prior to exiting the trap. Many experimental groups observe that such plasmas reach equilibrium at a temperature well above the temperature of the surrounding electrodes. This problem is typically attributed to electronic noise and plasma expansion, which heat the plasma. The present work reports anomalous heating far beyond what can be attributed to those two sources. The heating seems to be ...
Production of antihydrogen atoms by mixing antiprotons with a cold, confined, positron plasma depend...
Antihydrogen, the bound state of an antiproton and a positron, is of interest for use in precision t...
Only our ATRAP Collaboration is yet able to accumulate and store 4.2 K antiprotons and positrons. Th...
The ASACUSA collaboration produces a beam of antihydrogen atoms by mixing pure positron and antiprot...
The production and study of cold antihydrogen will require the manipulation of dense and cold, singl...
Magnetized nonneutral plasma composed of electrons or positrons couples to the local microwave envir...
Cold antihydrogen atoms were produced by mixing cold samples of antiprotons and positrons. The tempe...
Cold antihydrogen atoms were produced by mixing cold samples of antiprotons and positrons. The tempe...
Precise spectroscopic measurements of anti-hydrogen at the ALPHA experiment are hindered by small nu...
The positron, the antiparticle of the electron, predicted by Dirac in 1931 and discovered by Anderso...
AbstractCold antihydrogen atoms were produced by mixing cold samples of antiprotons and positrons. T...
The binding energies of antihydrogen atoms formed when antiprotons are mixed with positron plasmas h...
Evaporative cooling has proven to be an invaluable technique in atomic physics, allowing for the stu...
Antihydrogen is now routinely produced at CERN by overlapping clouds of positrons and antiprotons. T...
Production of antihydrogen atoms by mixing antiprotons with a cold, confined, positron plasma depend...
Antihydrogen, the bound state of an antiproton and a positron, is of interest for use in precision t...
Only our ATRAP Collaboration is yet able to accumulate and store 4.2 K antiprotons and positrons. Th...
The ASACUSA collaboration produces a beam of antihydrogen atoms by mixing pure positron and antiprot...
The production and study of cold antihydrogen will require the manipulation of dense and cold, singl...
Magnetized nonneutral plasma composed of electrons or positrons couples to the local microwave envir...
Cold antihydrogen atoms were produced by mixing cold samples of antiprotons and positrons. The tempe...
Cold antihydrogen atoms were produced by mixing cold samples of antiprotons and positrons. The tempe...
Precise spectroscopic measurements of anti-hydrogen at the ALPHA experiment are hindered by small nu...
The positron, the antiparticle of the electron, predicted by Dirac in 1931 and discovered by Anderso...
AbstractCold antihydrogen atoms were produced by mixing cold samples of antiprotons and positrons. T...
The binding energies of antihydrogen atoms formed when antiprotons are mixed with positron plasmas h...
Evaporative cooling has proven to be an invaluable technique in atomic physics, allowing for the stu...
Antihydrogen is now routinely produced at CERN by overlapping clouds of positrons and antiprotons. T...
Production of antihydrogen atoms by mixing antiprotons with a cold, confined, positron plasma depend...
Antihydrogen, the bound state of an antiproton and a positron, is of interest for use in precision t...
Only our ATRAP Collaboration is yet able to accumulate and store 4.2 K antiprotons and positrons. Th...