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Featured researches published by A. Müllers.


Journal of Physics B | 2016

Large numbers of cold positronium atoms created in laser-selected Rydberg states using resonant charge exchange

R. McConnell; G. Gabrielse; W. S. Kolthammer; Philip Richerme; A. Müllers; Jochen Walz; D. Grzonka; M. Zieliński; D. W. Fitzakerley; M. C. George; E. A. Hessels; C. H. Storry; M. Weel

Lasers are used to control the production of highly excited positronium atoms (Ps*). The laser light excites Cs atoms to Rydberg states that have a large cross section for resonant charge-exchange collisions with cold trapped positrons. For each trial with 30 million trapped positrons, more than 700 000 of the created Ps* have trajectories near the axis of the apparatus, and are detected using Stark ionization. This number of Ps* is 500 times higher than realized in an earlier proof-of-principle demonstration (2004 Phys. Lett. B 597 257). A second charge exchange of these near-axis Ps* with trapped antiprotons could be used to produce cold antihydrogen, and this antihydrogen production is expected to be increased by a similar factor.


New Journal of Physics | 2012

A semiconductor laser system for the production of antihydrogen

A. Müllers; S Böttner; Daniel Kolbe; Thomas Diehl; Andreas Koglbauer; Matthias Sattler; Matthias Stappel; Ruth Steinborn; Jochen Walz; G. Gabrielse; Rita Kalra; W. S. Kolthammer; R. McConnell; Philip Richerme; D. W. Fitzakerley; M. C. George; E. A. Hessels; C. H. Storry; M. Weel; D. Grzonka; W. Oelert

Laser-controlled charge exchange is a promising method for producing cold antihydrogen. Caesium atoms in Rydberg states collide with positrons and create positronium. These positronium atoms then interact with antiprotons, forming antihydrogen. Laser excitation of the caesium atoms is essential to increase the cross section of the charge-exchange collisions. This method was demonstrated in 2004 by the ATRAP collaboration by using an available copper vapour laser. For a second generation of charge-exchange experiments we have designed a new semiconductor laser system that features several improvements compared to the copper vapour laser. We describe this new laser system and show the results from the excitation of caesium atoms to Rydberg states within the strong magnetic fields in the ATRAP apparatus.


PROCEEDINGS OF THE WORKSHOP ON COLD ANTIMATTER PLASMAS AND APPLICATION TO#N#FUNDAMENTAL PHYSICS | 2008

Solid‐state continuous Lyman‐alpha source for laser‐cooling of antihydrogen

Jochen Walz; Thomas Beyer; Daniel Kolbe; Frank Markert; A. Müllers; Martin Scheid

Cooling antihydrogen atoms is important for future experiments both to test the fundamental CPT symmetry by high‐resolution laser spectroscopy and also to measure the gravitational acceleration of antimatter. Laser‐cooling of antihydrogen can be done on the strong 1 S–2 P transition at the wavelength of Lyman‐alpha (121.6 nm). Ongoing work to set up a solid‐state continuous‐wave laser source at Lyman‐alpha is described.


Physical Review Letters | 2011

Adiabatic Cooling of Antiprotons

G. Gabrielse; W. S. Kolthammer; R. McConnell; Philip Richerme; Rita Kalra; E. Novitski; D. Grzonka; W. Oelert; T. Sefzick; M. Zieliński; D. W. Fitzakerley; M. C. George; E. A. Hessels; C. H. Storry; M. Weel; A. Müllers; Jochen Walz


Physical Review Letters | 2010

Centrifugal Separation of Antiprotons and Electrons

G. Gabrielse; W. S. Kolthammer; R. McConnell; Philip Richerme; Jonathan Wrubel; Rita Kalra; E. Novitski; D. Grzonka; W. Oelert; T. Sefzick; M. Zieliński; Joseph Borbely; D. W. Fitzakerley; M. C. George; E. A. Hessels; C. H. Storry; M. Weel; A. Müllers; Jochen Walz; A. Speck


New Journal of Physics | 2012

Efficient transfer of positrons from a buffer-gas-cooled accumulator into an orthogonally oriented superconducting solenoid for antihydrogen studies

D. Comeau; A. Dror; D. W. Fitzakerley; M. C. George; E. A. Hessels; C. H. Storry; M. Weel; D. Grzonka; W. Oelert; G. Gabrielse; Rita Kalra; W. S. Kolthammer; R. McConnell; Philip Richerme; A. Müllers; Jochen Walz


Physical Review A | 2013

Using electric fields to prevent mirror-trapped antiprotons in antihydrogen studies

Philip Richerme; G. Gabrielse; S. Ettenauer; Rita Kalra; E. Tardiff; D. W. Fitzakerley; M. C. George; E. A. Hessels; C. H. Storry; M. Weel; A. Müllers; Jochen Walz


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2011

Pumped helium system for cooling positron and electron traps to 1.2 K

Jonathan Wrubel; G. Gabrielse; W. S. Kolthammer; P. Larochelle; R. McConnell; Philip Richerme; D. Grzonka; W. Oelert; T. Sefzick; M. Zieliński; Joseph Borbely; M. C. George; E. A. Hessels; C. H. Storry; M. Weel; A. Müllers; Jochen Walz; A. Speck


Bulletin of the American Physical Society | 2016

Large numbers of cold positronium atoms created in laser-selected Rydberg states using resonant charge exchange .

R. McConnell; G. Gabrielse; W. S. Kolthammer; Philip Richerme; A. Müllers; Jochen Walz; D. Grzonka; W. Oelert; M. Zieliński; D. W. Fitzakerley; M. C. George; E. A. Hessels; C. H. Storry; M. Weel


Bulletin of the American Physical Society | 2014

A Low-Inductance Ioffe Trap for Antihydrogen Spectroscopy

Eric Tardiff; Jack DiSciacca; S. Ettenauer; D. W. Fitzakerley; G. Gabrielse; M. C. George; D. Grzonka; Christopher D. Hamley; E. A. Hessels; N. Jones; Rita Kalra; Kathryn Marable; Mason Marshall; A. Müllers; W. Oelert; T. Sefzick; C. H. Storry; Jochen Walz; M. Weel; M. Zieliński

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D. Grzonka

Forschungszentrum Jülich

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W. Oelert

Forschungszentrum Jülich

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