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The Principles of Quantum Mechanics

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The article was published on 1930-01-01 and is currently open access. It has received 5991 citations till now. The article focuses on the topics: Quantum statistical mechanics & Open quantum system.

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Quantum Computer Science

TL;DR: A technical overview of the emerging field of quantum computation along with new research results by the authors along with a focus on the computational model of quantum computing rather than on the engineering issues associated with its physical implementation.
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Nonholonomic problems and the theory of distributions

TL;DR: In this article, Griffiths and Birkhauser discuss the distinction between holonomic and non-holonomic mechanical and variational problems, and indicate how rich and interesting the phenomena are in the nonholonomic case.
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Fermi resonance in dimers : a model study

TL;DR: In this article, a theoretical model for symmetric dimers of carboxylic acids is proposed, which accounts for three effects on an equal footing: coupling between the high and low-frequency modes, Davydov-type splitting of the degenerate vibrational states, and Fermi resonance between the hydrogen-stretching fundamental and the first overtone of the hydrogen bending.
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New Experimental Limits on the Pauli-Forbidden Transitions in 12C Nuclei Obtained with 485 Days Borexino Data

TL;DR: In this article, the Borexino detector was used to test the Pauli exclusion principle (PEP) for nucleons in a non-Paulian transition of 1$P 3/2$-shell nucleons to the filled 1$S 1/2} shell in nuclei.
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Nonlinear Schrödinger equations from prequantum classical statistical field theory

TL;DR: In this paper, the authors derive some important features of the standard quantum mechanics from a certain classical-like model, prequantum classical statistical field theory, PCSFT, by establishing correspondence between classical and quantum quantities through asymptotic expansions.