Modern femtosecond technology can be used to create laser pulses that induce controlled spinning of anisotropic molecules to very high angular momentum states ("optical centrifuge"). In this paper we extend our previous study [M. Spanner and M. Ivanov, J. Chem. Phys. 114, 3456 (2001)] and focus on the stability of angular trapping and forced rotational acceleration of a diatomic molecule in an optical centrifuge. The effects of laser intensity modulations and rovibrational coupling are analyzed in detail, classically and quantum mechanically. The numerical simulations show excellent qualitative agreement between the quantum and classical systems. Forced rotations of the classical system can exhibit chaotic behavior, which becomes rather uni...
International audienceWe investigate, both theoretically and experimentally, the mechanism behind th...
Author Institution: Department of Chemistry and Biochemistry, University of Maryland, College Park, ...
International audienceWe present a detailed theoretical and experimental study of the rotation of th...
We perform a detailed quantum study of forced molecular rotation in an optical centrifuge, recently ...
International audienceWe consider a diatomic molecule driven by a linearly polarized laser pulse wit...
Forced rotation is a special case of strong-field molecular optics. Strong fields are a natural tool...
The control of ultrafast molecular rotational motion has benefited from the development of innovativ...
We computationally demonstrate a new method for coherently controlling the rotation-axis direction i...
The major purpose of this work is the experimental study of the applicability of an optical centrifu...
Author Institution: Department of Chemistry and Biochemistry, University of Maryland, College Park, ...
The angular momentum of molecules, or, equivalently, their rotation in three-dimensional space, is i...
Strong infrared fields can be used for controlled spinning of molecules to very high angular momentu...
The objective of this dissertation is the experimental study and control of laser-kicked molecular r...
Author Institution: Department of Chemistry and Biochemistry, University of Maryland, College Park, ...
International audienceWe investigate, both theoretically and experimentally, the mechanism behind th...
Author Institution: Department of Chemistry and Biochemistry, University of Maryland, College Park, ...
International audienceWe present a detailed theoretical and experimental study of the rotation of th...
We perform a detailed quantum study of forced molecular rotation in an optical centrifuge, recently ...
International audienceWe consider a diatomic molecule driven by a linearly polarized laser pulse wit...
Forced rotation is a special case of strong-field molecular optics. Strong fields are a natural tool...
The control of ultrafast molecular rotational motion has benefited from the development of innovativ...
We computationally demonstrate a new method for coherently controlling the rotation-axis direction i...
The major purpose of this work is the experimental study of the applicability of an optical centrifu...
Author Institution: Department of Chemistry and Biochemistry, University of Maryland, College Park, ...
The angular momentum of molecules, or, equivalently, their rotation in three-dimensional space, is i...
Strong infrared fields can be used for controlled spinning of molecules to very high angular momentu...
The objective of this dissertation is the experimental study and control of laser-kicked molecular r...
Author Institution: Department of Chemistry and Biochemistry, University of Maryland, College Park, ...
International audienceWe investigate, both theoretically and experimentally, the mechanism behind th...
Author Institution: Department of Chemistry and Biochemistry, University of Maryland, College Park, ...
International audienceWe present a detailed theoretical and experimental study of the rotation of th...