Fundamental length
Description
The concept of fundamental length was first put forward by Heisenberg from purely dimensional reasons. From a study of the observed masses of the elementary particles known at that time, it is sumrised that this length should be of the order of magnitude 1 approximately 10-13 cm. It was Heisenberg's belief that introduction of such a fundamental length would eliminate the divergence difficulties from relativistic quantum field theory by cutting off the high energy regions of the 'proper fields'. Since the divergence difficulties arise primarily due to infinite number of degrees of freedom, one simple remedy would be the introduction of a principle that limits these degrees of freedom by removing the effectiveness of the waves with a frequency exceeding a certain limit without destroying the relativistic invariance of the theory. The principle can be stated as follows: It is in principle impossible to invent an experiment of any kind that will permit a distintion between the positions of two particles at rest, the distance between which is below a certain limit. A more elegant way of introducing fundamental length into quantum theory is through commutation relations between two position operators. In quantum field theory such as quantum electrodynamics, it can be introduced through the commutation relation between two interpolating photon fields (vector potentials). (K.B.)
Additional details
Publishing Information
- Publisher
- Department of Atomic Energy.
- Imprint Place
- Bombay
- Imprint Title
- Proceedings of the 2. high energy physics symposium, Santiniketan, November 9-13, 1974
- Imprint Pagination
- p. 188-202.
Conference
- Title
- 2. high energy physics symposium.
- Dates
- 9 Nov 1974.
- Place
- Santiniketan, India.
INIS
- Country of Publication
- India
- Country of Input or Organization
- India
- INIS RN
- 7267212
- Subject category
- S72: PHYSICS OF ELEMENTARY PARTICLES AND FIELDS;
- Resource subtype / Literary indicator
- Conference
- Descriptors DEI
- ELEMENTARY PARTICLES; FUNDAMENTAL CONSTANTS; LAGRANGIAN FIELD THEORY; LORENTZ GROUPS; PERTURBATION THEORY; PHOTONS; QUANTUM ELECTRODYNAMICS; SIGMA TERMS; SUM RULES; TOTAL CROSS SECTIONS; VECTORS
- Descriptors DEC
- COMMUTATORS; CROSS SECTIONS; CURRENT COMMUTATORS; ELECTRODYNAMICS; EQUATIONS; FIELD THEORIES; LIE GROUPS; MASSLESS PARTICLES; MATHEMATICAL OPERATORS; POINCARE GROUPS; QUANTUM FIELD THEORY; QUANTUM OPERATORS; SYMMETRY GROUPS; TENSORS
Optional Information
- Notes
- 9 refs.