Recoil-ion and electron momentum spectroscopy: reaction-microscopes
Спектроскопия импульсов ионов отдачи и электронов: реакционные микроскопы
2003-08-14
SCID: 54.1/zd4dj2qk
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COLTRIMSelectron momentum spectroscopyfully differential cross sectionsreaction microscopesrecoil-ion momentum spectroscopy
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Abstract (AI)
Recoil-ion and electron momentum spectroscopy is a rapidly developing technique that allows one to measure the vector momenta of several ions and electrons resulting from atomic or molecular fragmentation. In a unique combination, large solid angles close to 4π and superior momentum resolutions around a few per cent of an atomic unit (a.u.) are typically reached in state-of-the art machines, so-called reaction-microscopes. Evolving from recoil-ion and cold target recoil-ion momentum spectroscopy (COLTRIMS), reaction-microscopes—the `bubble chambers of atomic physics'—mark the decisive step forward to investigate many-particle quantum-dynamics occurring when atomic and molecular systems or even surfaces and solids are exposed to time-dependent external electromagnetic fields. This paper concentrates on just these latest technical developments and on at least four new classes of fragmentation experiments that have emerged within about the last five years. First, multi-dimensional images in momentum space brought unprecedented information on the dynamics of single-photon induced fragmentation of fixed-in-space molecules and on their structure. Second, a break-through in the investigation of high-intensity short-pulse laser induced fragmentation of atoms and molecules has been achieved by using reaction-microscopes. Third, for electron and ion-impact, the investigation of two-electron reactions has matured to a state such that the first fully differential cross sections (FDCSs) are reported. Fourth, comprehensive sets of FDCSs for single ionization of atoms by ion-impact, the most basic atomic fragmentation reaction, brought new insight, a couple of surprises and unexpected challenges to theory at keV to GeV collision energies. In addition, a brief summary on the kinematics is provided at the beginning. Finally, the rich future potential of the method is briefly envisaged.
Key Findings
1
Multidimensional momentum-space imaging has revealed new information about single-photon fragmentation dynamics and the structure of fixed-in-space molecules.
2
Reaction microscopes enabled major advances in studying high-intensity short-pulse laser fragmentation of atoms and molecules.
3
Reaction microscopes measure vector momenta of multiple ions and electrons from atomic or molecular fragmentation with near-4π solid-angle coverage and momentum resolutions of a few percent of an atomic unit.
4
The technique enables investigations of many-particle quantum dynamics in atoms, molecules, surfaces, and solids exposed to time-dependent electromagnetic fields.
5
Two-electron impact reactions have reached the stage of producing the first fully differential cross sections, while extensive ion-impact ionization measurements revealed surprises and challenges for theory across keV-to-GeV energies.
Research Object
Atomic and molecular systems, surfaces, and solids undergoing fragmentation under time-dependent electromagnetic fields or particle impact
Research Subject
Many-particle quantum dynamics and fully differential momentum-space fragmentation observables, including molecular breakup, strong-field fragmentation, two-electron reactions, and ion-impact single ionization
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2003-08-14
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