Zur Kurzanzeige

dc.identifier.uri http://dx.doi.org/10.15488/10233
dc.identifier.uri https://www.repo.uni-hannover.de/handle/123456789/10305
dc.contributor.author Bergmann, Klaas
dc.contributor.author Nägerl, Hanns-Christoph
dc.contributor.author Panda, Cristian
dc.contributor.author Gabrielse, Gerald
dc.contributor.author Miloglyadov, Eduard
dc.contributor.author Quack, Martin
dc.contributor.author Seyfang, Georg
dc.contributor.author Wichmann, Gunther
dc.contributor.author Ospelkaus, Silke
dc.contributor.author Kuhn, Axel
dc.contributor.author Longhi, Stefano
dc.contributor.author Szameit, Alexander
dc.contributor.author Pirro, Philipp
dc.contributor.author Hillebrands, Burkard
dc.contributor.author Zhu, Xue-Feng
dc.contributor.author Zhu, Jie
dc.contributor.author Drewsen, Michael
dc.contributor.author Hensinger, Winfried K.
dc.contributor.author Weidt, Sebastian
dc.contributor.author Halfmann, Thomas
dc.contributor.author Wang, Hai-Lin
dc.contributor.author Paraoanu, Gheorghe Sorin
dc.contributor.author Vitanov, Nikolay V.
dc.contributor.author Mompart, Jordi
dc.contributor.author Busch, Thomas
dc.contributor.author Barnum, Timothy J.
dc.contributor.author Grimes, David D.
dc.contributor.author Field, Robert W.
dc.contributor.author Raizen, Mark G.
dc.contributor.author Narevicius, Edvardas
dc.contributor.author Auzinsh, Marcis
dc.contributor.author Budker, Dmitry
dc.contributor.author Pálffy, Adriana
dc.contributor.author Keitel, Christoph H.
dc.date.accessioned 2020-12-02T13:04:27Z
dc.date.available 2020-12-02T13:04:27Z
dc.date.issued 2019
dc.identifier.citation Bergmann, K.; Nägerl, H.-C.; Panda, C.; Gabrielse, G.; Miloglyadov, E. et al.: Roadmap on STIRAP applications. In: Journal of Physics B: Atomic, Molecular and Optical Physics 52 (2019), Nr. 20, 202001. DOI: https://doi.org/10.1088/1361-6455/ab3995
dc.description.abstract STIRAP (stimulated Raman adiabatic passage) is a powerful laser-based method, usually involving two photons, for efficient and selective transfer of populations between quantum states. A particularly interesting feature is the fact that the coupling between the initial and the final quantum states is via an intermediate state, even though the lifetime of the latter can be much shorter than the interaction time with the laser radiation. Nevertheless, spontaneous emission from the intermediate state is prevented by quantum interference. Maintaining the coherence between the initial and final state throughout the transfer process is crucial. STIRAP was initially developed with applications in chemical dynamics in mind. That is why the original paper of 1990 was published in The Journal of Chemical Physics. However, from about the year 2000, the unique capabilities of STIRAP and its robustness with respect to small variations in some experimental parameters stimulated many researchers to apply the scheme to a variety of other fields of physics. The successes of these efforts are documented in this collection of articles. In Part A the experimental success of STIRAP in manipulating or controlling molecules, photons, ions or even quantum systems in a solid-state environment is documented. After a brief introduction to the basic physics of STIRAP, the central role of the method in the formation of ultracold molecules is discussed, followed by a presentation of how precision experiments (measurement of the upper limit of the electric dipole moment of the electron or detecting the consequences of parity violation in chiral molecules) or chemical dynamics studies at ultralow temperatures benefit from STIRAP. Next comes the STIRAP-based control of photons in cavities followed by a group of three contributions which highlight the potential of the STIRAP concept in classical physics by presenting data on the transfer of waves (photonic, magnonic and phononic) between respective waveguides. The works on ions or ion strings discuss options for applications, e.g. in quantum information. Finally, the success of STIRAP in the controlled manipulation of quantum states in solid-state systems, which are usually hostile towards coherent processes, is presented, dealing with data storage in rare-earth ion doped crystals and in nitrogen vacancy (NV) centers or even in superconducting quantum circuits. The works on ions and those involving solid-state systems emphasize the relevance of the results for quantum information protocols. Part B deals with theoretical work, including further concepts relevant to quantum information or invoking STIRAP for the manipulation of matter waves. The subsequent articles discuss the experiments underway to demonstrate the potential of STIRAP for populating otherwise inaccessible high-lying Rydberg states of molecules, or controlling and cooling the translational motion of particles in a molecular beam or the polarization of angular-momentum states. The series of articles concludes with a more speculative application of STIRAP in nuclear physics, which, if suitable radiation fields become available, could lead to spectacular results. eng
dc.language.iso eng
dc.publisher Bristol : Institute of Physics Publishing
dc.relation.ispartofseries Journal of Physics B: Atomic, Molecular and Optical Physics 52 (2019), Nr. 20
dc.rights CC BY 3.0 Unported
dc.rights.uri https://creativecommons.org/licenses/by/3.0/
dc.subject acoustic waves eng
dc.subject molecular Rydberg states eng
dc.subject nuclear coherent population transfer eng
dc.subject parity violation eng
dc.subject spin waves eng
dc.subject stimulated Raman adiabatic passage (STIRAP) eng
dc.subject ultracold molecules eng
dc.subject Acoustic waves eng
dc.subject Digital storage eng
dc.subject Electric dipole moments eng
dc.subject Metal ions eng
dc.subject Molecular beams eng
dc.subject Molecules eng
dc.subject Photons eng
dc.subject Rare earths eng
dc.subject Rydberg states eng
dc.subject Spin waves eng
dc.subject Stereochemistry eng
dc.subject Stimulated emission eng
dc.subject Coherent population transfer eng
dc.subject Controlled manipulations eng
dc.subject Experimental parameters eng
dc.subject Parity violation eng
dc.subject Rare-earth-ion doped crystals eng
dc.subject Stimulated Raman adiabatic passage eng
dc.subject Superconducting quantum circuit eng
dc.subject Ultracold molecules eng
dc.subject Quantum optics eng
dc.subject.ddc 530 | Physik ger
dc.title Roadmap on STIRAP applications
dc.type Article
dc.type Text
dc.relation.issn 0953-4075
dc.relation.doi https://doi.org/10.1088/1361-6455/ab3995
dc.bibliographicCitation.issue 20
dc.bibliographicCitation.volume 52
dc.bibliographicCitation.firstPage 202001
dc.description.version publishedVersion
tib.accessRights frei zug�nglich


Die Publikation erscheint in Sammlung(en):

Zur Kurzanzeige

 

Suche im Repositorium


Durchblättern

Mein Nutzer/innenkonto

Nutzungsstatistiken