ASTM E1250-2015 Standard Test Method for Application of Ionization Chambers to Assess the Low Energy Gamma Component of Cobalt-60 Irradiators Used in Radiation-Hardness Testing of .pdf
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1、Designation: E1250 15Standard Test Method forApplication of Ionization Chambers to Assess the LowEnergy Gamma Component of Cobalt-60 Irradiators Used inRadiation-Hardness Testing of Silicon Electronic Devices1This standard is issued under the fixed designation E1250; the number immediately following
2、 the designation indicates the year oforiginal adoption or, in the case of revision, the year of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon () indicates an editorial change since the last revision or reapproval.1. Scope1.1 Low energy components
3、 in the photon energy spectrumof Co-60 irradiators lead to absorbed dose enhancement effectsin the radiation-hardness testing of silicon electronic devices.These low energy components may lead to errors in determin-ing the absorbed dose in a specific device under test. Thismethod covers procedures f
4、or the use of a specialized ioniza-tion chamber to determine a figure of merit for the relativeimportance of such effects. It also gives the design andinstructions for assembling this chamber.1.2 This method is applicable to measurements in Co-60radiation fields where the range of exposure rates is
5、7 106to3102Ckg1s1(approximately 100 R/h to 100 R/s). Forguidance in applying this method to radiation fields where theexposure rate is 100 R/s, see Appendix X1.NOTE 1See Terminology E170 for definition of exposure and its units.1.3 The values stated in SI units are to be regarded as thestandard. The
6、 values given in parentheses are for informationonly.1.4 This standard does not purport to address all of thesafety concerns, if any, associated with its use. It is theresponsibility of the user of this standard to establish appro-priate safety and health practices and determine the applica-bility o
7、f regulatory limitations prior to use.2. Referenced Documents2.1 ASTM Standards:2E170 Terminology Relating to Radiation Measurements andDosimetryE668 Practice for Application of Thermoluminescence-Dosimetry (TLD) Systems for Determining AbsorbedDose in Radiation-Hardness Testing of Electronic Device
8、sE1249 Practice for Minimizing Dosimetry Errors in Radia-tion Hardness Testing of Silicon Electronic Devices UsingCo-60 Sources3. Terminology3.1 absorbed dose enhancement factor ratio of the ab-sorbed dose at a point in a material of interest to theequilibrium absorbed dose in that same material.3.2
9、 average absorbed dosemass-weighted mean of theabsorbed dose over a region of interest.3.3 average absorbed dose enhancement factorratio ofthe average absorbed dose in a region of interest to theequilibrium absorbed dose.3.4 dosimeterany device used to determine the equilib-rium absorbed dose in the
10、 material and at the irradiationposition of interest. Examples of such devices include ther-moluminescence dosimeters (TLDs), liquid chemicaldosimeters, and radiochromic dye films. (See Practice E668,for a discussion of TLDs.)3.5 equilibrium absorbed doseabsorbed dose at someincremental volume withi
11、n the material in which the conditionof charged particle equilibrium (the energies, number, anddirection of charged particles induced by the radiation areconstant throughout the volume) exists. (See TerminologyE170.)4. Significance and Use4.1 Although Co-60 nuclei only emit monoenergetic gammarays a
12、t 1.17 and 1.33 MeV, the finite thickness of sources, andencapsulation materials and other surrounding structures thatare inevitably present in irradiators can contribute a substantialamount of low-energy gamma radiation, principally by Comp-ton scattering (1, 2).3In radiation-hardness testing of el
13、ectronicdevices this low-energy photon component of the gamma1This method is under the jurisdiction of ASTM Committee E10 on NuclearTechnology and Applicationsand is the direct responsibility of SubcommitteeE10.07 on Radiation Dosimetry for Radiation Effects on Materials and Devices.Current edition
14、approved June 1, 2015. Published August 2015. Originallyapproved in 1988. Last previous approved in 2010 as E1250-10. DOI: 10.1520/E1250-15.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volum
15、e information, refer to the standards Document Summary page onthe ASTM website.3The boldface numbers in parentheses refer to the list of references appended tothis test method.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United States1spectrum c
16、an introduce significant dosimetry errors for adevice under test since the equilibrium absorbed dose asmeasured by a dosimeter can be quite different from theabsorbed dose deposited in the device under test because ofabsorbed dose enhancement effects (3, 4). Absorbed doseenhancement effects refer to
17、 the deviations from equilibriumabsorbed dose caused by non-equilibrium electron transportnear boundaries between dissimilar materials.4.2 The ionization chamber technique described in thismethod provides an easy means for estimating the importanceof the low-energy photon component of any given irra
18、diatortype and configuration.4.3 When there is an appreciable low-energy spectral com-ponent present in a particular irradiator configuration, specialexperimental techniques should be used to ensure that dosim-etry measurements adequately represent the absorbed dose inthe device under test. (See Pra
19、ctice E1249.)5. Apparatus5.1 Ionization Chamber, a specially fabricated parallel-plateionization chamber with interchangeable gold and aluminumelectrodes. A specific design is described in Appendix X2.5.2 Bias Supply, a battery or power supply capable ofdelivering 60 to 100 V dc at a current up to 1
20、 mA.5.3 Electrometer, an electrometer or picoammeter capableof measuring currents as low as 30 pA with a resolution of atleast 0.1 pA.5.4 Twinaxial Cable, the twinaxial cable that connects theionization chamber to the bias supply and electrometer is anintegral part of the ionization chamber (see Fig
21、. 1).NOTE 2The ionization chamber dimensions given in Appendix X2 areappropriate to TWC 78-2 twinaxial cable.4This cable has the followingphysical dimensions (all dimensions given in inches):Nominal outer diameter 0.242Conductor spacing (center to center) 0.076Conductor dielectric outer diameter 0.0
22、76Conductor diameter 0.037Other equivalent twinaxial cable types can be used, but the applicabledimensions of the ionization chamber body, clamp, stem, and cable clampnut in Appendix X2 must then be adjusted.5.5 Triaxial Cable, the triaxial cable that connects theionization chamber and the bias supp
23、ly to the electrometer isusually supplied with the electrometer, and must be of a typethat is compatible with the electrometer type used (see Fig. 1).6. Procedure6.1 Assemble the ionization chamber, bias supply, andelectrometer as shown in Fig. 1.6.2 Turn on the bias supply, set the voltage to at le
24、ast 60 V,and ensure that there is no appreciable leakage current (Ileakage5) indicate a very large low-energyphoton component. Appendix X3 gives a table of measuredvalues of for a variety of typical Co-60 irradiator facilitiesand experimental arrangements.NOTE 4Monoenergetic 1.25 MeV photon radiatio
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