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THE ALMOST IMPOSSIBLE WORLDS IN QUANTUM INFORMATION
THE ALMOST IMPOSSIBLE WORLDS IN QUANTUM INFORMATION

White paper: The logic of quantum mechanics
White paper: The logic of quantum mechanics

Simulation of Quantum Gates on a Novel GPU Architecture
Simulation of Quantum Gates on a Novel GPU Architecture

... 1-qubit elementary transformation U . As forementioned, our simulation model (Fig. 1) involves a classical computation (code running on the host), and a quantum computation which is just simulated on the GPU (kernel code running in parallel on the device). When designing the kernel code some limitat ...
Acrobat PDFMaker 6.0
Acrobat PDFMaker 6.0

... many years as these constants show up all over the place in many calculations and for most calculations setting the quantum vacuum equal to one does not matter since it is a perfect relativistic quantum medium that equals one in natural units. We can also investigate the Dirac Lagrangian for a spino ...
Description of quantum coherence in thermodynamic
Description of quantum coherence in thermodynamic

Gauge dynamics of kagome antiferromagnets
Gauge dynamics of kagome antiferromagnets

PDF only - at www.arxiv.org.
PDF only - at www.arxiv.org.

Module P10.2 A wave model for matter
Module P10.2 A wave model for matter

authentication with quantum smart-card
authentication with quantum smart-card

Theoretical Chemistry I Quantum Mechanics
Theoretical Chemistry I Quantum Mechanics

Influence of measurements on the statistics of work performed on a
Influence of measurements on the statistics of work performed on a

Direct Measurement of Topological Numbers with
Direct Measurement of Topological Numbers with

ppt
ppt

... Coherent admixture of particle/holes at finite t/U ...
Spin effects in semiconductor quantum dot structures
Spin effects in semiconductor quantum dot structures

Quantum discord and remote state preparation
Quantum discord and remote state preparation

Lecture Notes, Statistical Mechanics (Theory F)
Lecture Notes, Statistical Mechanics (Theory F)

A New Model of Shiatsu Energy
A New Model of Shiatsu Energy

PRIGOGINE Y LA TEORÍA DEL CAOS: UNA MIRADA FILOSÓFICA.
PRIGOGINE Y LA TEORÍA DEL CAOS: UNA MIRADA FILOSÓFICA.

A Functional Architecture for Scalable Quantum Computing
A Functional Architecture for Scalable Quantum Computing

Why dynamics?
Why dynamics?

Measurement and assignment of the size-dependent
Measurement and assignment of the size-dependent

... confinement limit allows the theoretical problem to be conveniently divided into separate electron and hole components. The electron and hole wave functions are each described by the product of a unit cell basis function and an envelope function, which satisfies the spherical boundary condition. Sin ...
introductory lecture on quantum computing
introductory lecture on quantum computing

Quantum mechanics: Myths and facts
Quantum mechanics: Myths and facts

Few-Particle Effects in Semiconductor Quantum Dots: Spectrum Calculations on
Few-Particle Effects in Semiconductor Quantum Dots: Spectrum Calculations on

... and thermal properties are determined by the behavior of electrons, but also the structure of crystal and molecules, optical properties are depended on the electronic structure [11]. Free electron To start with, consider the free electron, which is not being attracted by any potential. The p2 , wher ...
The p orbital paradox
The p orbital paradox

... states we may renunciate to the concept of trajectories in quantum mechanics [Messiah, 1999]. I dislike that kind of reply by two motives. The first reason is methodological. I think one would address the mistake being done during the early assumption, i.e. that a single electron finds in some point ...
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Particle in a box



In quantum mechanics, the particle in a box model (also known as the infinite potential well or the infinite square well) describes a particle free to move in a small space surrounded by impenetrable barriers. The model is mainly used as a hypothetical example to illustrate the differences between classical and quantum systems. In classical systems, for example a ball trapped inside a large box, the particle can move at any speed within the box and it is no more likely to be found at one position than another. However, when the well becomes very narrow (on the scale of a few nanometers), quantum effects become important. The particle may only occupy certain positive energy levels. Likewise, it can never have zero energy, meaning that the particle can never ""sit still"". Additionally, it is more likely to be found at certain positions than at others, depending on its energy level. The particle may never be detected at certain positions, known as spatial nodes.The particle in a box model provides one of the very few problems in quantum mechanics which can be solved analytically, without approximations. This means that the observable properties of the particle (such as its energy and position) are related to the mass of the particle and the width of the well by simple mathematical expressions. Due to its simplicity, the model allows insight into quantum effects without the need for complicated mathematics. It is one of the first quantum mechanics problems taught in undergraduate physics courses, and it is commonly used as an approximation for more complicated quantum systems.
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