The matter-antimatter asymmetry observed in the universe today still lacks a quantitative explanation. One possible mechanism that could contribute to the observed imbalance is a violation of the combined Charge-, Parity- and Time symmetries (CPT). A test of CPT symmetry using anti-atoms is being carried out by the ASACUSA-CUSP collaboration at the CERN Antiproton Decelerator using a low temperature beam of antihydrogen—the most simple atomic system built only of antiparticles. While hydrogen is the most abundant element in the universe, antihydrogen is produced in very small quantities in a laboratory framework. A detector for in-beam measurements of the ground state hyperfine structure of antihydrogen has to be able to detect very low sig...
The ASACUSA collaboration at CERN‐AD has recently submitted a proposal to measure the hyperfine spli...
The ASACUSA collaboration at the Antiproton Decelerator of CERN is planning to measure the ground-st...
The goal of the ASACUSA-CUSP collaboration at the Antiproton Decelerator of CERN is to measure the g...
AbstractThe matter-antimatter asymmetry observed in the universe today still lacks a quantitative ex...
The matter - anti matter asymmetry observed in the universe today still lacks a quantitative explana...
The ASACUSA Collaboration at CERNs Antiproton Decelerator aims to measure the ground state hyperfine...
The ground-state hyperfine splitting of antihydrogen promises one of the most sensitive tests of CPT...
The ASACUSA Collaboration at CERNs Antiproton Decelerator aims to measure the ground state hyperfine...
We have been developing ground-state antihydrogen atomic beams to test CPT symmetry via in-flight hy...
The goal of the ASACUSA (Atomic Spectroscopy And Collisions Using Slow Antiprotons) CUSP experiment ...
The ASACUSA (Atomic Spectroscopy And Collisions Using Slow Antiprotons) collaboration at the Antipro...
Producing a beam of antihydrogen, as published by the ASACUSA-Hbar collaboration[1], imposes some bi...
Antihydrogen, a positron bound to an antiproton, is the simplest antiatom. Its counterpart - hydroge...
The ASACUSA (Atomic Spectroscopy And Collisions Using Slow Antiprotons) collaboration plans to measu...
The ASACUSA collaboration at CERN‐AD has recently submitted a proposal to measure the hyperfine spli...
The ASACUSA collaboration at the Antiproton Decelerator of CERN is planning to measure the ground-st...
The goal of the ASACUSA-CUSP collaboration at the Antiproton Decelerator of CERN is to measure the g...
AbstractThe matter-antimatter asymmetry observed in the universe today still lacks a quantitative ex...
The matter - anti matter asymmetry observed in the universe today still lacks a quantitative explana...
The ASACUSA Collaboration at CERNs Antiproton Decelerator aims to measure the ground state hyperfine...
The ground-state hyperfine splitting of antihydrogen promises one of the most sensitive tests of CPT...
The ASACUSA Collaboration at CERNs Antiproton Decelerator aims to measure the ground state hyperfine...
We have been developing ground-state antihydrogen atomic beams to test CPT symmetry via in-flight hy...
The goal of the ASACUSA (Atomic Spectroscopy And Collisions Using Slow Antiprotons) CUSP experiment ...
The ASACUSA (Atomic Spectroscopy And Collisions Using Slow Antiprotons) collaboration at the Antipro...
Producing a beam of antihydrogen, as published by the ASACUSA-Hbar collaboration[1], imposes some bi...
Antihydrogen, a positron bound to an antiproton, is the simplest antiatom. Its counterpart - hydroge...
The ASACUSA (Atomic Spectroscopy And Collisions Using Slow Antiprotons) collaboration plans to measu...
The ASACUSA collaboration at CERN‐AD has recently submitted a proposal to measure the hyperfine spli...
The ASACUSA collaboration at the Antiproton Decelerator of CERN is planning to measure the ground-st...
The goal of the ASACUSA-CUSP collaboration at the Antiproton Decelerator of CERN is to measure the g...