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Electronic Structure of Atoms Chapter 6
Electronic Structure of Atoms Chapter 6

... Each colored line in such spectra represents light of one wavelength. A spectrum containing radiation of only specific wavelengths is called a line spectrum. ...
On the Formal Verification of Optical Quantum Gates in HOL
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... In Ref. 关13兴, we have investigated the quantum dynamics of a BEC with repulsive interaction that is confined on a ring and kicked periodically. This system is a nonlinear generalization of the quantum kicked rotor. From the point of view of dynamical theory, the kicked rotor is more generic than the ...
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STM Intro Script - MSU Science Theatre

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Fault-tolerant quantum computation

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Quantum Optics - Assets - Cambridge University Press

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Theoretical and empirical reasons for considering the application of

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Short-time-evolved wave functions for solving quantum many

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A “Garden of Forking Paths” – the Quantum

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data encryption device using radioactive decay and - UW

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Statistics of Occupation Numbers

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Parametric evolution of eigenstates: Beyond perturbation theory and

COPYRIGHT 2002 SCIENTIFIC AMERICAN, INC.
COPYRIGHT 2002 SCIENTIFIC AMERICAN, INC.

q - at www.arxiv.org.
q - at www.arxiv.org.

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DENSITY CONCEPT IN MOLECULES AND MATERIALS

... obtained through the single particle number density of the constituent atoms or molecules. A wide class of problems involving nanomaterials, interfacial science and soft condensed matter has been addressed using the density based theoretical formalism as well as atomistic simulation in this regime. ...
Deriving time dependent Schrödinger equation from Wave
Deriving time dependent Schrödinger equation from Wave

The Learnability of Quantum States
The Learnability of Quantum States

Simultaneous Measurement
Simultaneous Measurement

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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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