- Proportional counter
A proportional counter is a measurement device to count particles of
ionizing radiation and measure theirenergy .A proportional counter is a type of
Gaseous ionization detector - it works on the same principle as the Geiger-Müller counter, but uses a lower operatingvoltage . An incoming ionizing particle, if it has sufficient energy, liberates electrons from theatomic orbital s of the gas atoms (seeionization potential ), leaving an electron and positively charged atom, commonly known as an ion pair. As the charged particle travels through the chamber it leaves a trail of ion pairs along its trajectory. The electrons created in this process drift toward a readoutelectrode , known as theanode , under the influence of an appliedelectric field . At the same time, the positive ions drift towards thecathode , at much lower speed; in practical devices, the drift times are measured in microseconds and milliseconds, respectively.A proportional counter differs from an
ionization chamber in that the operating voltage is sufficiently high that the drifting electrons gain enough energy over amean free path to create further ion pairs when they collide with other neutral atoms of the gas. The electrons created in these new events also drift toward the readout electrode and can create further ion pairs themselves. In this manner, a cascade of ion pairs can be created, this is known as aTownsend avalanche . If the operating voltage is chosen carefully, each avalanche process occurs independently of other avalanches which derive from the same initial ionizing event. Therefore, even though the total number of electrons liberated can increase exponentially with distance, the total amount of charge created remains proportional to the amount of charge liberated in the original event.By measuring the total charge (time
integral of theelectric current ) between the electrodes, we can find out the particle'skinetic energy , because the number of ion pairs created by the incident ionizing charged particle is proportional to its energy.The geometry of the electrodes and the voltages on them are chosen such that in most of the volume of the counter the electric field strength is not enough to produce a Townsend avalanche. The electrons just drift until they get close to the anode, where a strong field allows avalanche multiplication to occur. In this way each electron is multiplied by approximately the same factor (up to about a million) independent of the distance it has covered in the low-field 'drift region'. If the field strength everywhere is below a critical value, Townsend avalanches do not occur at all, and the detector operates as an ionization chamber. If the voltage (and therefore the field strength) is too high, the degree of charge amplification tends to a maximum value, and all pulses from the chamber have the same amplitude, so the detector operates as a
Geiger-Müller counter .This process of charge amplification can improve the
signal-to-noise ratio of the detector and also reduce the amount of amplification required from external electronics. The proportionality between the energy of the charged particle travelling through the chamber and the total charge created makes proportional counters useful for charged particlespectroscopy . The energy resolution of a proportional counter, however, is limited because both the initial ionization event and the subsequent 'multiplication' event are subject to statistical fluctuations.Proportional counters are also useful for detection of high energy
photons , such asX-ray s orgamma-ray s, provided these can penetrate the entrance window.External articles
;Patents
* US patent|3092747, S. Fine, "Proportional counter"
* US patent|2499830, E. W. Molloy, "Air proportional counter"References
*cite journal
author=G.Charpak and F.Sauli
title=High-resolution Electronic Particle Detectors
journal=Annual review of Nuclear Science
year=1984
volume=34
pages=285–350
publisher=Annual Reviews Inc.
doi=10.1146/annurev.ns.34.120184.001441* E. Mathieson, Induced charge distributions in proportional detectors, http://www.inst.bnl.gov/programs/gasnobledet/publications/Mathieson's_Book.pdf
ee also
*
Gaseous ionization detectors
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