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In this revised and expanded edition, in addition to a comprehensible introduction to the theoretical foundations of quantum tunneling based on different methods of formulating and solving tunneling problems, different semiclassical approximations for multidimensional systems are presented. Particular attention is given to the tunneling of composite systems, with examples taken from molecular tunneling and also from nuclear reactions. The interesting and puzzling features of tunneling times are given extensive coverage, and the possibility of measurement of these times with quantum clocks are
Tunneling (Physics) --- Quantum theory. --- Quantum dynamics --- Quantum mechanics --- Quantum physics --- Physics --- Mechanics --- Thermodynamics --- Penetration probability --- Quantum mechanical tunneling --- Tunnel effect --- Electric conductivity --- Solids
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530.145.6 --- Superconductivity --- Tunneling (Physics) --- Penetration probability --- Quantum mechanical tunneling --- Tunnel effect --- Electric conductivity --- Solids --- Critical currents --- Superfluidity --- Wave mechanics. Corpuscular waves. Matrices --- 530.145.6 Wave mechanics. Corpuscular waves. Matrices
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Tunneling (Physics) --- Quantum biochemistry --- Biophysics --- Quantum Theory --- Biochemistry --- Congresses --- Biochemistry. --- Biophysics. --- Quantum Theory. --- 530.145.6 <063> --- 537.533.35 <043> --- -Tunneling (Physics) --- -Penetration probability --- Quantum mechanical tunneling --- Tunnel effect --- Electric conductivity --- Solids --- Biochemistry, Quantum --- Biology, Quantum --- Quantum biology --- Quantum chemistry --- Quantum Theories --- Theories, Quantum --- Theory, Quantum --- Mechanobiology --- Wave mechanics. Corpuscular waves. Matrices--Congressen --- Electron microscopy--Dissertaties --- -Wave mechanics. Corpuscular waves. Matrices--Congressen --- 537.533.35 <043> Electron microscopy--Dissertaties --- 530.145.6 <063> Wave mechanics. Corpuscular waves. Matrices--Congressen --- -Quantum Theories --- Penetration probability --- Tunneling (Physics) - Congresses --- Quantum biochemistry - Congresses --- Biophysics - congresses --- Quantum Theory - congresses --- Biochemistry - congresses
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This book provides a comprehensive introduction to the theoreticalfoundations of quantum tunneling, stressing the basic physicsunderlying the applications. The topics addressed include exponentialand nonexponential decay processes and the application of scatteringtheory to tunneling problems.
Quantum mechanics. Quantumfield theory --- Electronics and optics of solids --- Tunneling (Physics) --- Quantum theory --- 530.145.6 --- 530.145.6 Wave mechanics. Corpuscular waves. Matrices --- Wave mechanics. Corpuscular waves. Matrices --- Théorie quantique --- Penetration probability --- Quantum mechanical tunneling --- Tunnel effect --- Electric conductivity --- Solids --- Quantum dynamics --- Quantum mechanics --- Quantum physics --- Physics --- Mechanics --- Thermodynamics
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Chemical thermodynamics --- fysicochemie --- Chemical reaction, Conditions and laws of. --- Tunneling (Physics) --- Tunneling (Physics). --- Chemical reaction, Conditions and laws of --- Penetration probability --- Quantum mechanical tunneling --- Tunnel effect --- Electric conductivity --- Solids --- Conditions and laws of chemical reaction --- Reaction, Conditions and laws of (Chemistry) --- Chemistry, Physical and theoretical --- Physical laws
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Large deviations --- Limit theorems (Probability theory) --- Phase transformations (Statistical physics) --- Tunneling (Physics) --- Penetration probability --- Quantum mechanical tunneling --- Tunnel effect --- Electric conductivity --- Solids --- Phase changes (Statistical physics) --- Phase transitions (Statistical physics) --- Phase rule and equilibrium --- Statistical physics --- Probabilities --- Deviations, Large --- Statistics --- Effet tunnel --- Transitions de phases --- Théorèmes des limites (théorie des probabilités) --- Grandes déviations --- Effet tunnel. --- Transitions de phases. --- Grandes déviations.
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Quantum tunneling is an essential issue in quantum physics. Especially, the rapid development of nanotechnology in recent years promises a lot of applications in condensed matter physics, surface science and nanodevices, which are growing interests in fundamental issues, computational techniques and potential applications of quantum tunneling. The book involves two relevant topics. One is quantum tunneling theory in condensed matter physics, including the basic concepts and methods, especially for recent developments in mesoscopic physics and computational formulation. The second part is the f
Tunneling (Physics) --- Quantum theory. --- Electrons --- Electron emission --- Electronic work function --- Emission of electrons --- Work function, Electronic --- Electric discharges through gases --- Electron work function --- Free electron theory of metals --- Internal conversion (Nuclear physics) --- Quantum dynamics --- Quantum mechanics --- Quantum physics --- Physics --- Mechanics --- Thermodynamics --- Penetration probability --- Quantum mechanical tunneling --- Tunnel effect --- Electric conductivity --- Solids --- Emission.
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Electronics and optics of solids --- Solids --- Tunneling (Physics) --- Solides --- Periodicals --- 530.145.6 --- 538.9 --- Solid state physics --- Transparent solids --- Penetration probability --- Quantum mechanical tunneling --- Tunnel effect --- Electric conductivity --- 538.9 Physics of condensed matter (in liquid state and solid state) --- Physics of condensed matter (in liquid state and solid state) --- 530.145.6 Wave mechanics. Corpuscular waves. Matrices --- Wave mechanics. Corpuscular waves. Matrices --- Solids. --- Tunneling (Physics). --- Tunneling in solids --- Electron tunneling theory --- Solid tunneling
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This book provides a single-source reference to the state-of-the art in tunneling field effect transistors (TFETs). Readers will learn the TFETs physics from advanced atomistic simulations, the TFETs fabrication process and the important roles that TFETs will play in enabling integrated circuit designs for power efficiency. · Provides comprehensive reference to tunneling field effect transistors (TFETs); · Covers all aspects of TFETs, from device process to modeling and applications; · Enables design of power-efficient integrated circuits, with low power consumption TFETs.
Electrical Engineering --- Electrical & Computer Engineering --- Engineering & Applied Sciences --- Field-effect transistors. --- Unipolar transistors --- Transistors --- Systems engineering. --- Electronics. --- Circuits and Systems. --- Electronic Circuits and Devices. --- Electronics and Microelectronics, Instrumentation. --- Electrical engineering --- Physical sciences --- Engineering systems --- System engineering --- Engineering --- Industrial engineering --- System analysis --- Design and construction --- Electronic circuits. --- Microelectronics. --- Microminiature electronic equipment --- Microminiaturization (Electronics) --- Electronics --- Microtechnology --- Semiconductors --- Miniature electronic equipment --- Electron-tube circuits --- Electric circuits --- Electron tubes --- Field-effect transistors --- Tunneling (Physics) --- Penetration probability --- Quantum mechanical tunneling --- Tunnel effect --- Electric conductivity --- Solids --- FETs (Transistors)
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This thesis describes the controlled immobilization of molecules between two cuboidal metal nanoparticles by means of a self-assembly method to control the quantum plasmon resonances. It demonstrates that quantum-plasmonics is possible at length scales that are useful for real applications. Light can interact with certain metals and can be captured in the form of plasmons, which are collective, ultra-fast oscillations of electrons that can be manipulated at the nano-scale. Surface plasmons are considered as a promising phenomenon for potentially bridging the gap between fast-operating-speed optics and nano-scale electronics. Quantum tunneling has been predicted to occur across two closely separated plasmonic resonators at length scales (<0.3 nm) that are not accessible using present-day nanofabrication techniques. Unlike top-down nanofabrication, the molecules between the closely-spaced metal nanoparticles could control the gap sizes down to sub-nanometer scales and act as the frequency controllers in the terahertz regime, providing a new control parameter in the fabrication of electrical circuits facilitated by quantum plasmon tunneling.
Tunneling (Physics) --- Plasmons (Physics) --- Plasma oscillation quanta --- Exciton theory --- Plasma oscillations --- Plasma waves --- Quasiparticles (Physics) --- Solids --- Penetration probability --- Quantum mechanical tunneling --- Tunnel effect --- Electric conductivity --- Plasma effects --- Nanochemistry. --- Quantum theory. --- Nanotechnology. --- Microwaves. --- Quantum Physics. --- Microwaves, RF and Optical Engineering. --- Hertzian waves --- Electric waves --- Electromagnetic waves --- Geomagnetic micropulsations --- Radio waves --- Shortwave radio --- Molecular technology --- Nanoscale technology --- High technology --- Quantum dynamics --- Quantum mechanics --- Quantum physics --- Physics --- Mechanics --- Thermodynamics --- Nanoscale chemistry --- Chemistry, Analytic --- Nanoscience --- Analytical chemistry --- Quantum physics. --- Optical engineering. --- Mechanical engineering
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