We perform a detailed quantum study of forced molecular rotation in an optical centrifuge, recently proposed by J. Karczmarek [Phys, Rev. Lett. 82, 3420 (1999)]. The approach uses strong nonresonant laser fields with chirped frequency to induce efficient rotational excitation of anisotropic molecules via a sequence of Raman transitions. Quantum calculations firstly of angular confinement (angular trapping) of a molecule in the early stages of the centrifuge evolution and secondly of the resulting rotational dissociation process are carried out herein. The trapping calculations include both angular degrees of freedom while the dissociation calculations include one vibrational and one rotation degree of freedom. Diatomic Cl2 is used as a test...
The behavior of molecules subject to strong laser fields has been arapidly growing topic in molecula...
In the work presented here, an ultrafast, angularly accelerating optical trap, called an optical cen...
This dissertation investigates the behavior of molecules with extreme amounts of rotational energy a...
Modern femtosecond technology can be used to create laser pulses that induce controlled spinning of ...
Forced rotation is a special case of strong-field molecular optics. Strong fields are a natural tool...
The major purpose of this work is the experimental study of the applicability of an optical centrifu...
We computationally demonstrate a new method for coherently controlling the rotation-axis direction i...
Strong infrared fields can be used for controlled spinning of molecules to very high angular momentu...
International audienceWe consider a diatomic molecule driven by a linearly polarized laser pulse wit...
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...
The control of ultrafast molecular rotational motion has benefited from the development of innovativ...
Author Institution: Department of Chemistry and Biochemistry, University of Maryland, College Park, ...
The equations of motion for the molecular rotation are derived for vibrationally cold dimers that ar...
We present a method to create nondispersing rotational quantum states in an ensemble of linear molec...
The behavior of molecules subject to strong laser fields has been arapidly growing topic in molecula...
In the work presented here, an ultrafast, angularly accelerating optical trap, called an optical cen...
This dissertation investigates the behavior of molecules with extreme amounts of rotational energy a...
Modern femtosecond technology can be used to create laser pulses that induce controlled spinning of ...
Forced rotation is a special case of strong-field molecular optics. Strong fields are a natural tool...
The major purpose of this work is the experimental study of the applicability of an optical centrifu...
We computationally demonstrate a new method for coherently controlling the rotation-axis direction i...
Strong infrared fields can be used for controlled spinning of molecules to very high angular momentu...
International audienceWe consider a diatomic molecule driven by a linearly polarized laser pulse wit...
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...
The control of ultrafast molecular rotational motion has benefited from the development of innovativ...
Author Institution: Department of Chemistry and Biochemistry, University of Maryland, College Park, ...
The equations of motion for the molecular rotation are derived for vibrationally cold dimers that ar...
We present a method to create nondispersing rotational quantum states in an ensemble of linear molec...
The behavior of molecules subject to strong laser fields has been arapidly growing topic in molecula...
In the work presented here, an ultrafast, angularly accelerating optical trap, called an optical cen...
This dissertation investigates the behavior of molecules with extreme amounts of rotational energy a...