Published February 22, 2000 | Version v1
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Quantum mechanical cluster calculations of critical scintillation processes

Description

This paper describes the use of commercial quantum chemistry codes to simulate several critical scintillation processes. The crystal is modeled as a cluster of typically 50 atoms embedded in an array of typically 5,000 point charges designed to reproduce the electrostatic field of the infinite crystal. The Schrodinger equation is solved for the ground, ionized, and excited states of the system to determine the energy and electron wave function. Computational methods for the following critical processes are described: (1) the formation and diffusion of relaxed holes, (2) the formation of excitons, (3) the trapping of electrons and holes by activator atoms, (4) the excitation of activator atoms, and (5) thermal quenching. Examples include hole diffusion in CsI, the exciton in CsI, the excited state of CsI:Tl, the energy barrier for the diffusion of relaxed holes in CaF2 and PbF2, and prompt hole trapping by activator atoms in CaF2:Eu and CdS:Te leading to an ultra-fast (<50ps) scintillation rise time.

Availability note (English)

Also available from OSTI as DE00908483; PURL: https://www.osti.gov/servlets/purl/908483-gwWsLT/

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Additional details

Publishing Information

Imprint Pagination
10 p.
Report number
LBNL--48087

Conference

Title
5. International Conference on Inorganic Scintillators and Their Applications
Dates
16-20 Aug 1999
Place
Moscow (Russian Federation)

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
45080188
Subject category
S74: ATOMIC AND MOLECULAR PHYSICS;
Resource subtype / Literary indicator
Conference
Descriptors DEI
ATOMS; CHEMISTRY; DIFFUSION; ELECTRONS; ELECTROSTATICS; EXCITATION; EXCITED STATES; EXCITONS; QUENCHING; SCINTILLATIONS; WAVE FUNCTIONS
Descriptors DEC
ELEMENTARY PARTICLES; ENERGY LEVELS; ENERGY-LEVEL TRANSITIONS; FERMIONS; FUNCTIONS; LEPTONS; QUASI PARTICLES