US3709692A - Silver chloride monocrystal doped with cadmium and low concentration of lead - Google Patents

Silver chloride monocrystal doped with cadmium and low concentration of lead Download PDF

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Publication number
US3709692A
US3709692A US00085285A US3709692DA US3709692A US 3709692 A US3709692 A US 3709692A US 00085285 A US00085285 A US 00085285A US 3709692D A US3709692D A US 3709692DA US 3709692 A US3709692 A US 3709692A
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Prior art keywords
track
cadmium
lead
particle
silver chloride
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US00085285A
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English (en)
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G Haase
E Schopper
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Agfa Gevaert AG
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Agfa Gevaert AG
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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01TMEASUREMENT OF NUCLEAR OR X-RADIATION
    • G01T5/00Recording of movements or tracks of particles; Processing or analysis of such tracks
    • G01T5/10Plates or blocks in which tracks of nuclear particles are made visible by after-treatment, e.g. using photographic emulsion, using mica

Definitions

  • ABSTRACT [30] Foreign Application Priority Data The photographic properties of silver halide Nov 14 1969 German P 19 57 313 8 monocrystal particle-track detectors which contain y cadmium are highly improved by an additional con- 52 us. c1. ..96/l08, 96/27 E, 96/94 BF, tem of 252/408, 96/452 [51] Int. Cl.
  • the present invention relates to particle track detectors consisting of silver halide monocrystals which are improved in their sensitivity and have their fogging reduced by the addition of certain doping agents.
  • the particle track must provide as much information as possible about the particle. It must be able to be rapidly and easily interpreted.
  • the defects which an ionizing particle produces in the solid are submicroscopic in size, mechanism for amplifying the track must be available for purposes of photo-optical interpretation, e.g. for rendering the track visible.
  • the defects produced in the solid by the ionizing particles represent the latent image of the particle track, which is developed by the amplification mechanism. The more the track discloses details characteristic of the particles, the better is the detector.
  • Etching has become important inter alia in the case of mica and some inorganic glasses and, in particular, organic high polymers.
  • the selective etching process along the particle track is mainly based on the fact that bonds dissolved along the track considerably facilitate the etching process. Numerous difficulties, however, arise in the etching process, which considerably restrict its utility.
  • a new phase is preferably deposited along the particle track.
  • this new phase consists substantially of silver.
  • the silver chloride monocrystals are superior to the above-mentioned solid state particle track detectors, in which the particle tracks must be amplified by an etching process, especially in that in silver chloride monocrystals the amplifying and development process can be carried out very simply and rapidly.
  • the amplification process consists in a uniform exposure of the crystal platelets, in which the particle track was recorded, to high energy light, preferably UV light.
  • the exposure to light causes electron-defect electron pairs to be produced in the crystals.
  • the electrons are trapped along the particle track in interchange with silver ions from the disturbed regions.
  • the track is in this way stabilised and then amplified. This process is, in principle, comparable to the elementary photographic process.
  • the original track is the latent image of the track and the amplification then corresponds to the photographic development.
  • the silver chloride crystals doped as described above are sufficiently sensitive for many purposes. They are advantageous also in that they do not register 'y-rays, X-rays and electrons, so that these rays do not produce an interfering background.
  • silver halide monocrystal detectors doped with cadmium for recording tracks of ionizing particles, which detectors in addition contain lead ions in quantities of up to ppm as a second doping agent.
  • This small addition of lead ions in general lead-II ions substantially suppresses the interfering background while the sensitivity to light remains the same, so that substantially better particle track images which can be more reliably interpreted are obtained. It is to be assumed that the small additional doping with lead causes the above-mentioned developable defects which are already present in the monocrystal, such as crystal shift, etc., to become insensitive to such an extent that they no longer form a background during the amplification process by exposure to UV light.
  • the effect of the lead addition according to the invention is particularly unexpected in view of the fact that it was known that the sensitivity of silver halide crystals towardsionizing particles could beincreased by the addition of lead and that a relatively powerful background which prevents quantitative measurements occurs also in those detectors which are doped with lead alone. It could, therefore, not be predicted that suppression of the background could be achieved by the addition of small amounts of lead to cadmiumdoped silver chloride monocrystals.
  • ion tracks can be recorded without an interfering background.
  • concentration of cadmium may vary within wide limits. It depends primarily on the nature of the ionizing particles which are required to be detected with any given detector. Concentrations of about 50 ppm (parts per million) up to about 1 percent by weight of cadmium, based on the weight of the silver halide, preferably silver chloride, have generally been found to be sufficient. If the amount of cadmium added is small, only decay products and heavy ions can be detected. In this way, an interfering background due to the effect of light particles can be largely avoided. At cadmium concentrations of over 0.1 percent by weight, practically all the ionizing particles, even the lighter ones, are recorded.
  • the required quantity of lead ions is 5 to 100 ppm, preferably 5 to ppm.
  • the particle track detectors according to the present invention may be used for determining particle data, for the investigation of particle reactions and nuclear fissions, the investigation of decay mechanisms including those of superheavy nuclei, the identification of isotopes of high energy ions and the investigation of isotope compositions of solar radiation or of cosmic radiation to determine the sources of this radiation. These detectors are especially suitable for recording tracks of heavy ions.
  • the track of ionizing particles can be amplified in the detectors according to the present invention in the usual manner by uniform exposure to shortwave light, especially UV light. Extremely sharply defined tracks can thus be obtained on a clear background.
  • the detectors are superior to conventional photographic emulsions for recording nuclear tracks (nuclear track emulsions).
  • These emulsion materials consist of a silver halide gelatine emulsion layer which has a high power of resolution, on a layer support.
  • the photographic emulsions moreover, generally have a more strongly interfering background since they are also sensitive to 'y-rays, X-rays and electrons.
  • tracks of ionizing particles can be amplified along their whole length for practically any given length, even if the tracks are discontinuous, i.e. if between the crystal regions of high interference, which are produced by the ionizing particles running through them, there are crystal regions which are undisturbed or relatively little disturbed, in which the track is interrupted.
  • the detectors according to the present invention are generally superior to detectors in which the track amplification is produced by an etching process.
  • the etching process starts at the surface of the detector, where the ionizing particle has entered the crystal, and continues along the track of the particle into the interior of the crystal, and fresh etching solution must be supplied along the channel already formed by the etching process.
  • the etching process is liable to stop at the end of a track section because the etching solution then cannot penetrate sufficiently rapidly-the adjacent undisturbed region of the crystal, so that the following sections of the track which are not continuous with the previous track can no longer be amplified.
  • a less disturbed or even undisturbed crystal region between two track sections may occasionally be penetrated by the etching solution if the time allowed for the etching solution to act is considerably increased.
  • the etching solution also continues to act during this period in that portion of the track which was etched first and which has therefore been amplified, with the result that this first section of track becomes greatly increased in width and may acquire a pronounced cone shape. This, however, seriously impairs the reproducibility of the track and the accuracy of the interpretation.
  • the detectors according to the present invention are completely free from such disadvantages.
  • the amplification process by uniform exposure of the detectors to shortwave light is characterized by its simplicity and freedom from interference. After the recording of the particle track, the detectors are not exposed to any liquids, so that any disturbances which might be caused by liquids are avoided. It is worth mentioning here by way of comparison, the sensitivity of the etching methods in this respect and the swelling and distortion phenomena which occur in the conventional photographic processing of nuclear track emulsions.
  • EXAMPLE An aqueous solution of cadmium chloride (CdCl '2.5 H O p.a.) is added in a pipette to pulverulent silver chloride which has a degree of purity of 99.999 percent, resulting in a silver chloride which has a cadmium content of about 600 ppm. The mixture is dried in the pipette in a drying cupboard.
  • cadmium chloride CdCl '2.5 H O p.a.
  • the silver chloride doped with cadmium and lead is melted in the pipette and the melt is placed between two quartz glass platelets which are heated to about 550C and the distance between which is fixed at about 200 p. by rods of quartz glass. On cooling, a polycrystalline silver chloride platelet doped with cadmium and lead is obtained.
  • the sandwich consisting of the two quartz glass platelets with the silver chloride platelet between them is placed in a horizontal quartz glass tube which, after being evacuated, is filled with nitrogen to a pressure of 400 mm Hg.
  • a tube furnace is then passed over the quartz glass tube at such a temperature and at such a rate that the polycrystalline silver chloride platelet doped with cadmium and lead is converted in a known manner, by a melting process, into a monocrystal which can be dissolved from the quartz platelets by dipping the sandwich into water.
  • the silver chloride monocrystal doped with cadmium and lead is uniformly exposed to a.
  • the intensity of the shortwave light irradiating the specimen is about 10 quanta per cm per second.
  • the exposure time is about 20 to 30 minutes.
  • a silver chloride monocrystal for detecting the track of ionizing particles and containing 20ppm to 1% by weight of cadmium as a doping agent that increases its tracking sensitivity, the improvement according to which the crystal also contains, as a second doping agent that reduces background interference with the track detection, lead-(II) ions in a concentration of 5 ppm to ppm.

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  • Physics & Mathematics (AREA)
  • Health & Medical Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • General Physics & Mathematics (AREA)
  • High Energy & Nuclear Physics (AREA)
  • Molecular Biology (AREA)
  • Spectroscopy & Molecular Physics (AREA)
  • Measurement Of Radiation (AREA)
  • Medicines Containing Antibodies Or Antigens For Use As Internal Diagnostic Agents (AREA)
US00085285A 1969-11-14 1970-10-29 Silver chloride monocrystal doped with cadmium and low concentration of lead Expired - Lifetime US3709692A (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
DE19691957313 DE1957313A1 (de) 1969-11-14 1969-11-14 Verbesserte Festkoerper-Teilchenspuren-Detektoren

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US3709692A true US3709692A (en) 1973-01-09

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US (1) US3709692A (it)
BE (1) BE758734A (it)
DE (1) DE1957313A1 (it)
FR (1) FR2067309B1 (it)
GB (1) GB1302785A (it)

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3819375A (en) * 1970-11-27 1974-06-25 Polaroid Corp Relief images
US4269927A (en) * 1979-04-05 1981-05-26 Eastman Kodak Company Internally doped surface sensitized high chloride silver halide emulsions and photograhic elements and processes for their preparation
US4792690A (en) * 1987-08-21 1988-12-20 University Of Tennessee Research Corporation Ultraviolet laser beam monitor using radiation responsive crystals
US5015562A (en) * 1988-03-09 1991-05-14 Fuji Photo Film Co., Ltd. Light-sensitive silver halide element containing modant, dye and sonic polymer

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3047392A (en) * 1960-02-01 1962-07-31 Honeywell Regulator Co Photographic hydroxyethyl starch silver halide print-out composition
US3219449A (en) * 1962-12-11 1965-11-23 Technical Operations Inc Photographic medium having a binder-free silver halide layer and methods of preparing same
US3362797A (en) * 1964-05-21 1968-01-09 Mo I Stali I Splavov Stabilizing silver chloride crystals with mercuric chloride additive

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3047392A (en) * 1960-02-01 1962-07-31 Honeywell Regulator Co Photographic hydroxyethyl starch silver halide print-out composition
US3219449A (en) * 1962-12-11 1965-11-23 Technical Operations Inc Photographic medium having a binder-free silver halide layer and methods of preparing same
US3362797A (en) * 1964-05-21 1968-01-09 Mo I Stali I Splavov Stabilizing silver chloride crystals with mercuric chloride additive

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3819375A (en) * 1970-11-27 1974-06-25 Polaroid Corp Relief images
US4269927A (en) * 1979-04-05 1981-05-26 Eastman Kodak Company Internally doped surface sensitized high chloride silver halide emulsions and photograhic elements and processes for their preparation
US4792690A (en) * 1987-08-21 1988-12-20 University Of Tennessee Research Corporation Ultraviolet laser beam monitor using radiation responsive crystals
US5015562A (en) * 1988-03-09 1991-05-14 Fuji Photo Film Co., Ltd. Light-sensitive silver halide element containing modant, dye and sonic polymer

Also Published As

Publication number Publication date
GB1302785A (it) 1973-01-10
DE1957313A1 (de) 1971-06-24
FR2067309B1 (it) 1974-06-21
FR2067309A1 (it) 1971-08-20
BE758734A (it) 1971-05-10

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