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B. Pavlov

Publications and source records attributed to B. Pavlov.

22 records · Page 2Linked to original sources

Resonance spin filter

A design of the resonance spin finter is suggested in form of a quantum well with three quantum wires attached. Explicit formula is suggested for transmission coefficients accross the well in terms of the resonance eigenfunction of the Schredinger operator on the well with Rashba spin-orbital interaction.

cond-mat.other↗

Resonance quantum switch: search for working parameters

Design of a three-terminal Quantum Switch is suggested in form of a network consisting of a circular quantum well and four semi-infinite single mode quantum wires attached to it. It is shown that in resonance case, when the Fermi level in the wires is close to some energy level in the well, the magnitude of the governing electric field on the well may be specified in such a way that the quantum current across the switch from the up-leading wire to the outgoing wires (terminals) can be controlled via rotation of the orthogonal projection of the governing electric field onto the plane of the device. The details of design of the switch are chosen in dependence of desired working temperature, available Fermi level and effective mass of electron. The speed of switching is estimated. A solvable model of the switch in form of a one-dimensional graph with a resonance vertex is suggested.

cond-mat.str-el↗

Resonance Quantum Gate

Simplest models of two- and three-terminal Quantum Quantum Gates are suggested in form of a quantum ring with few one-dimensional quantum wires attached to it and several point-wise govering electrodes inside the ring which are charged by a single hole. In resonance case, when the Fermi level in the wires coincides with the resonance energy level on the ring the geometry of the device may be chosen such that the quantum current through the switch from up-leading wire to the outgoing wires may be controlled via re-directing of the hole from one govering electrode to another one. The working parameters of the gate are defined in dependence of the desired working temperature, the Fermi level and the effective mass of the electron in the wires.

cond-mat↗

Quantum Electronic Devices Based on Metal-Dielectric Transition in Low-Dimensional Quantum Structures

Two types of optically manipulated quantum electronic devices are considered: a quantum dot and a finite periodic molecular chain, with the period doubled under resonance optical excitation. The stability of the working regimes of the devices in large scale of temperatures is discussed. Some motivation in favor of the molecular chain is suggested. A class of materials, which can be used for producing this device is discussed.

quant-ph↗