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Academic literature on the topic 'Lindblad-Form'
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Journal articles on the topic "Lindblad-Form"
Henkel, C. "Laser theory in manifest Lindblad form." Journal of Physics B: Atomic, Molecular and Optical Physics 40, no. 12 (June 5, 2007): 2359–71. http://dx.doi.org/10.1088/0953-4075/40/12/012.
Full textHod, Oded, César A. Rodríguez-Rosario, Tamar Zelovich, and Thomas Frauenheim. "Driven Liouville von Neumann Equation in Lindblad Form." Journal of Physical Chemistry A 120, no. 19 (February 16, 2016): 3278–85. http://dx.doi.org/10.1021/acs.jpca.5b12212.
Full textFUJII, KAZUYUKI. "ALGEBRAIC STRUCTURE OF A MASTER EQUATION WITH GENERALIZED LINDBLAD FORM." International Journal of Geometric Methods in Modern Physics 05, no. 07 (November 2008): 1033–40. http://dx.doi.org/10.1142/s0219887808003168.
Full textBerrêdo, R. C. de, J. G. P. de Faria, F. Camargo, M. C. Nemes, H. E. Borges, K. M. Fonseca Romero, A. F. R. de Toledo Piza, and A. N. Salgueiro. "On the Physical Content of Lindblad Form Master Equations." Physica Scripta 57, no. 4 (April 1, 1998): 533–34. http://dx.doi.org/10.1088/0031-8949/57/4/010.
Full textGinsberg, Daniel. "A priori estimates for a relativistic liquid with free surface boundary." Journal of Hyperbolic Differential Equations 16, no. 03 (September 2019): 401–42. http://dx.doi.org/10.1142/s0219891619500152.
Full textBravyi, Sergey, and Robert Konig. "Classical simulation of dissipative fermionic linear optics." Quantum Information and Computation 12, no. 11&12 (November 2012): 925–43. http://dx.doi.org/10.26421/qic12.11-12-2.
Full textFagnola, Franco, and Carlos M. Mora. "Basic Properties of a Mean Field Laser Equation." Open Systems & Information Dynamics 26, no. 03 (September 2019): 1950015. http://dx.doi.org/10.1142/s123016121950015x.
Full textFagnola, Franco, and Rolando Rebolledo. "The Approach to Equilibrium of a Class of Quantum Dynamical Semigroups." Infinite Dimensional Analysis, Quantum Probability and Related Topics 01, no. 04 (October 1998): 561–72. http://dx.doi.org/10.1142/s0219025798000302.
Full textEspoukeh, Pakhshan, and Pouria Pedram. "The lower bound to the concurrence for four-qubit W state under noisy channels." International Journal of Quantum Information 13, no. 01 (February 2015): 1550004. http://dx.doi.org/10.1142/s0219749915500045.
Full textvom Ende, Frederik, Gunther Dirr, Michael Keyl, and Thomas Schulte-Herbrüggen. "Reachability in Infinite-Dimensional Unital Open Quantum Systems with Switchable GKS–Lindblad Generators." Open Systems & Information Dynamics 26, no. 03 (September 2019): 1950014. http://dx.doi.org/10.1142/s1230161219500148.
Full textDissertations / Theses on the topic "Lindblad-Form"
Linden, Hans Paul Olav. "Zur dissipativen Dynamik von Ein- und Zwei-Teilchensystemen in molekularen Komplexen." Doctoral thesis, Humboldt-Universität zu Berlin, Mathematisch-Naturwissenschaftliche Fakultät I, 2002. http://dx.doi.org/10.18452/14716.
Full textIn the report at hand studies are presented dealing with three differentaspects of the dynamics of open quantum systems. Two topics are about the fundamental problems of the theory of dissipative molecular systems. Accordingly these investigations must remain on a more general level. In the third subject, however, which is about the two-particle effects in the dissipative dynamics the analyses can be extended to the computation of measurements. In the first part of the report a generalization of the well known standard quantum master equation to the nonlinear quantum master equation is developed. With the help of the projection operator technique belonging to it a formalism, that has not been popular in literature so far, can be reactivated. The second part of the report concentrates on examinations of the Monte-Carlo wave-function method, and results in the consistent generalization for a reservoir of finite temperature. The starting point for this is a microscopic model of the system-reservoir coupling, which is expanded to the so called Lindblad form of the dissipation in the line of the equation of motion for the reduced statistical operator. After the analysis of one-particle transfer processes the third part of the report is about the correlated motion of two quantum particles in a dissipative environment with main emphasis on the two-hydrogen system (dihydrid system) in transition metal complexes. First of all model computations for the dissipationless two-particle dynamics in a potential model are made. By different numerical computations the influence, which the particle-particle correlations exert on the tunneling through a potential barrier, can be shown.Based on simulations it is examined how these effects can be seen in neutron scattering experiments on two-particle systems of transition metal complexes. Main item of these investigations is a new formula for the neutron scattering which is based on the dissipative dynamics of the examined two-particle system.
Books on the topic "Lindblad-Form"
Kavokin, Alexey V., Jeremy J. Baumberg, Guillaume Malpuech, and Fabrice P. Laussy. Quantum description of light–matter coupling. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198782995.003.0005.
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