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Newton`s cradle analogue with Bose
Newton`s cradle analogue with Bose

The Fourth Quantum Number
The Fourth Quantum Number

Second Lecture: Towards an implementation of surface hopping
Second Lecture: Towards an implementation of surface hopping

Metaphors for Abstract Concepts: Visual Art and Quantum Mechanics
Metaphors for Abstract Concepts: Visual Art and Quantum Mechanics

... Johnson and Erickson and others4 have extended the intellectualist model of the metaphor into the ‘experientialist’ model. This model gives the artist an even stronger foundation than the intellectualist account for a justified use of metaphor when representing abstract, imperceptible concepts. John ...
Mayasite World View
Mayasite World View

Full randomness from arbitrarily deterministic events - diss.fu
Full randomness from arbitrarily deterministic events - diss.fu

Quantum Sphere
Quantum Sphere

Path  Integrals and the  Quantum Routhian David  Poland
Path Integrals and the Quantum Routhian David Poland

... but at the cost of having twice as many of them. However, if some of the system's momenta are conserved, then the differential equations associated with these momenta are trivial, and the Hamiltonian formulation offers clear advantages. One of the simplest ways that momenta can be conserved is if th ...
Chapter 15
Chapter 15

local pdf - Quantum Optics and Spectroscopy
local pdf - Quantum Optics and Spectroscopy

Quantum Mechanical Laws
Quantum Mechanical Laws

... Quantum Mechanics (QM) was one of the greatest revolutions in physics. Although it did not abolish but rather extended the former classical laws, the generalization was achieved at the cost of adopting a completely new language of concepts and a new way of thinking at phenomenological and mathematic ...
Quantum Mechanical Laws
Quantum Mechanical Laws

Quantum and Ecosystem Entropies
Quantum and Ecosystem Entropies

Light-matter interplay for optical metrology beyond
Light-matter interplay for optical metrology beyond

QUANTUM ALGORITHMS FOR ELEMENT DISTINCTNESS∗ 1
QUANTUM ALGORITHMS FOR ELEMENT DISTINCTNESS∗ 1

... 1. Introduction. In the last decade, quantum computing has become a prominent and promising area of theoretical computer science. Realizing this promise requires two things: (1) actually building a quantum computer and (2) discovering tasks where a quantum computer is significantly faster than a cla ...
Collège de France abroad Lectures Quantum information with real
Collège de France abroad Lectures Quantum information with real

W. Pauli - Fisica Fundamental
W. Pauli - Fisica Fundamental

... both the anomaly of the relativity correction of the optically active electron and the dependence of the interaction between the electron and the atom core on the relative orientation of these two systems. A more serious difficulty, raising a matter of principle, is however the connexion of these id ...
CHAP6
CHAP6

CHAP6a
CHAP6a

Abstracts Escuela de Fisica Matematica 2015, Universidad de los
Abstracts Escuela de Fisica Matematica 2015, Universidad de los

A model of quantum reality
A model of quantum reality

Million-Atom Pseudopotential Calculation of GX Mixing in GaAs AlAs
Million-Atom Pseudopotential Calculation of GX Mixing in GaAs AlAs

... the supercell contains 2 3 106 atoms). The calculation takes ,30 min on a IBM RSy6000 work station model 590 for one pressure value. We find that the G-X coupling in these QD’s is smaller than in the corresponding 20 3 20 superlattice [compare Fig. 2(a)]. Furthermore, as shown in Fig. 4, the anticro ...
Slide 1
Slide 1

Phase-field model of self-polarization and cell movement
Phase-field model of self-polarization and cell movement

... equilibrium quantifiers such as (non-fluctuating) free energy changes or production of thermodynamic entropy. – Subtleties occur in equilibrium thermodynamics for small systems, such as the role of finite size for quantities like (possibly negative-valued) canonical heat capacitance in presence of stro ...
Solution of the Hard Problem of Consciousness
Solution of the Hard Problem of Consciousness

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Quantum teleportation



Quantum teleportation is a process by which quantum information (e.g. the exact state of an atom or photon) can be transmitted (exactly, in principle) from one location to another, with the help of classical communication and previously shared quantum entanglement between the sending and receiving location. Because it depends on classical communication, which can proceed no faster than the speed of light, it cannot be used for faster-than-light transport or communication of classical bits. It also cannot be used to make copies of a system, as this violates the no-cloning theorem. While it has proven possible to teleport one or more qubits of information between two (entangled) atoms, this has not yet been achieved between molecules or anything larger.Although the name is inspired by the teleportation commonly used in fiction, there is no relationship outside the name, because quantum teleportation concerns only the transfer of information. Quantum teleportation is not a form of transportation, but of communication; it provides a way of transporting a qubit from one location to another, without having to move a physical particle along with it.The seminal paper first expounding the idea was published by C. H. Bennett, G. Brassard, C. Crépeau, R. Jozsa, A. Peres and W. K. Wootters in 1993. Since then, quantum teleportation was first realized with single photons and later demonstrated with various material systems such as atoms, ions, electrons and superconducting circuits. The record distance for quantum teleportation is 143 km (89 mi).
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