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The Planck constant is the fundamental constant that relates the energy of a quantum to its frequency. It sets the scale at which quantum effects become important and appears throughout quantum mechanics, including wavefunctions, commutation relations, uncertainty relations, angular momentum, and the Schrodinger equation. Together with the reduced Planck constant, it is one of the central numerical anchors of quantum theory.
The Planck constant is the fundamental constant that relates the energy of a quantum to its frequency. It sets the scale at which quantum effects become important and appears throughout quantum mechanics, including wavefunctions, commutation relations, uncertainty relations, angular momentum, and the Schrodinger equation. Together with the reduced Planck constant, it is one of the central numerical anchors of quantum theory.
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== Definition ==
== Definition ==

Revision as of 23:33, 18 May 2026

The Planck constant is the fundamental constant that relates the energy of a quantum to its frequency. It sets the scale at which quantum effects become important and appears throughout quantum mechanics, including wavefunctions, commutation relations, uncertainty relations, angular momentum, and the Schrodinger equation. Together with the reduced Planck constant, it is one of the central numerical anchors of quantum theory.

Definition

The Planck constant relates the energy of a quantum to the frequency of the associated radiation. In the Quantum Collection it connects photons, electromagnetic radiation, and quantization.

Reduced Planck constant

The reduced Planck constant is the Planck constant divided by 2π. It appears naturally in equations involving angular frequency, angular momentum, and quantum operators.

Role in quantization

Quantization means that certain physical quantities occur in discrete values rather than arbitrary continuous amounts. The Planck constant sets the scale of those discrete steps in many quantum systems.

Uncertainty and action

The Planck constant has the dimensions of action and appears in uncertainty relations. It helps determine when quantum effects are significant compared with classical behavior.

Appearance in quantum equations

The constant appears in the Schrodinger equation, time evolution, operators, and uncertainty principle.

See also

Table of contents (198 articles)

Index

Full contents

9. Quantum optics and experiments (5) Back to index
Experimental quantum physics: qubits, dilution refrigerators, quantum communication, and laboratory systems.
Experimental quantum physics: qubits, dilution refrigerators, quantum communication, and laboratory systems.
14. Plasma and fusion physics (8) Back to index
Conceptual illustration of plasma physics in a fusion context, showing magnetically confined ionized gas in a tokamak and the collective behavior governed by electromagnetic fields and transport processes.
Conceptual illustration of plasma physics in a fusion context, showing magnetically confined ionized gas in a tokamak and the collective behavior governed by electromagnetic fields and transport processes.

References


Author: Harold Foppele


Source attribution: Physics:Quantum Planck constant