scholarly journals Optical field induced rotation of polarization in rubidium atoms with the additional magnetic field

Author(s):  
M Ummal Momeen ◽  
Jianping Hu
2010 ◽  
Vol 102-104 ◽  
pp. 407-411 ◽  
Author(s):  
Guo Ji Zhao ◽  
Qian Luo ◽  
Xiang Jie Wang ◽  
Jian Luo

Numerical simulation and deposited experiment of MAG welding are carried out on the conditions of Electro-Magnetic Stirring (EMS) in this paper. Based on the research of EMS welding arc action, a simple EMS-MAG welding Gaussian distribution model using whole heat flux density is established, which MAG welding arc and droplet transfer are regarded as one integrated system. The important additional magnetic field parameter in EMS-MAG surfacing deposited welding is considered in this model. The computer-aided arc measurement system is used to analyze the effects of additional magnetic field in MAG welding. Effects of excitation current on welding penetration and width are analyzed by deposited experiments. Many deposited experiments are used to adjust model parameters and verify the simulation results. By defining key parameter and optimizing the model on the basis of experimental data, it can improve the simulation accuracy effectively. The results show that the established Gaussian distribution model can be used to simulate EMS-MAG welding process.


2020 ◽  
Vol 10 (24) ◽  
pp. 8850
Author(s):  
Jesús Liñares ◽  
Xesús Prieto-Blanco ◽  
Gabriel M. Carral ◽  
María C. Nistal

In this work, we present the physical simulation of the dynamical and topological properties of atom-field quantum interacting systems by means of integrated quantum photonic devices. In particular, we simulate mechanical systems used, for example, for quantum processing and requiring a very complex technology such as a spin-1/2 particle interacting with an external classical time-dependent magnetic field and a two-level atom under the action of an external classical time-dependent electric (optical) field (light-matter interaction). The photonic device consists of integrated optical waveguides supporting two collinear or codirectional modes, which are coupled by integrated optical gratings. We show that the single-photon quantum description of the dynamics of this photonic device is a quantum physical simulation of both aforementioned interacting systems. The two-mode photonic device with a single-photon quantum state represents the quantum system, and the optical grating corresponds to an external field. Likewise, we also present the generation of Aharonov–Anandan geometric phases within this photonic device, which also appear in the simulated systems. On the other hand, this photonic simulator can be regarded as a basic brick for constructing more complex photonic simulators. We present a few examples where optical gratings interacting with several collinear and/or codirectional modes are used in order to illustrate the new possibilities for quantum simulation.


1984 ◽  
Vol 34 (4) ◽  
pp. 285-294
Author(s):  
J. Maloch ◽  
L. Kalivoda ◽  
K. Petýrek

2019 ◽  
Vol 26 (10) ◽  
pp. 102701
Author(s):  
P. Kubes ◽  
M. Paduch ◽  
M. J. Sadowski ◽  
J. Cikhardt ◽  
B. Cikhardtova ◽  
...  

Pramana ◽  
2012 ◽  
Vol 78 (4) ◽  
pp. 585-594 ◽  
Author(s):  
S PRADHAN ◽  
R BEHERA ◽  
A K DAS

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