ASTM E2864-2013 Standard Test Method for Measurement of Airborne Metal and Metal Oxide Nanoparticle Surface Area Concentration in Inhalation Exposure Chambers using Krypton Gas Ads.pdf
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1、Designation: E2864 13Standard Test Method forMeasurement of Airborne Metal and Metal OxideNanoparticle Surface Area Concentration in InhalationExposure Chambers using Krypton Gas Adsorption1This standard is issued under the fixed designation E2864; the number immediately following the designation in
2、dicates 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 This test method covers determination of
3、 surface area ofairborne metal and metal oxide nanoparticles in inhalationexposure chambers for inhalation toxicology studies. Surfacearea may be measured by gas adsorption methods usingadsorbates such as nitrogen, krypton, and argon (Brunauer etal., 1938; Anderson, 1975; Gregg and Sing, 1982) (1, 2
4、, 3)2orby ion attachment and mobility-based methods (Ku andMaynard, 2005) (4). This test method is specific to themeasurement of surface area by gas adsorption by krypton gasadsorption. The test method permits the use of any moderncommercial krypton adsorption instruments but strictly definesthe sam
5、ple collection, outgassing, and analysis procedures formetal and metal oxide nanoparticles. Use of krypton is requireddue to the low overall surface area of particle-laden samplesand the need to accurately measure the background surfacearea of the filter used for sample collection. Instrument-report
6、ed values of surface area based on the multipointBrunauer, Emmett and Teller (BET) equation (Brunauer et al.,1938;Anderson, 1975; Gregg and Sing, 1982) (1, 2, 3) are usedto calculate surface area of airborne nanoparticles collected ona filter.1.2 The values stated in SI units are to be regarded asst
7、andard. No other units of measurement are included in thisstandard. State all numerical values in terms of SI units unlessspecific instrumentation software reports surface area usingalternate units.1.3 This standard does not purport to address all of thesafety concerns, if any, associated with its u
8、se. It is theresponsibility of the user of this standard to establish appro-priate safety and health practices and determine the applica-bility of regulatory limitations prior to use.2. Referenced Documents2.1 ASTM Standards:3B922 Test Method for Metal Powder Specific Surface Areaby Physical Adsorpt
9、ionC1274 Test Method for Advanced Ceramic Specific SurfaceArea by Physical AdsorptionE691 Practice for Conducting an Interlaboratory Study toDetermine the Precision of a Test MethodE2456 Terminology Relating to Nanotechnology2.2 ISO Standards:4ISO 9277 Determination of the Specific Surface Area ofSo
10、lids by Gas Adsorption using the BET MethodISO 18757 Fine Ceramics (Advanced Ceramics, AdvancedTechnical Ceramics)Determination of Specific surfaceArea of Ceramic Powders by Gas Adsorption using theBET Method3. Terminology3.1 DefinitionsFor additional definitions related tonanotechnology, see Termin
11、ology E2456.3.1.1 nanoparticles, nin nanotechnology, a sub-classification of ultrafine particle with lengths in two or threedimensions greater than 0.001 micrometre (1 nanometre) andsmaller than about 0.1 micrometre (100 nanometres) and whichmay or may not exhibit a size-related intensive property.E
12、24563.1.2 adsorbate, nmaterial that has been retained by theprocess of adsorption. B9223.1.3 adsorbent, nany solid having the ability to concen-trate or collect significant quantities of other substances on itssurface. B9223.1.4 adsorption, na process in which fluid molecules areconcentrated or coll
13、ected on a surface by chemical or physicalforces, or both. B9221This test method is under the jurisdiction of ASTM Committee E56 onNanotechnology and is the direct responsibility of Subcommittee E56.02 onPhysical and Chemical Characterization.Current edition approved Sept. 1, 2013. Published October
14、 2013. DOI: 10.1520/E2864-13.2The boldface numbers in parentheses refer to the list of references at the end ofthis standard.3For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volume information,
15、refer to the standards Document Summary page onthe ASTM website.4Available from American National Standards Institute (ANSI), 25 W. 43rd St.,4th Floor, New York, NY 10036, http:/www.ansi.org.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United St
16、ates13.1.5 BET-constant, nan indication of the magnitude ofthe adsorbent/adsorbate interactions in the first adsorbed layer.3.1.6 outgassing, nthe evolution of gas from a material ina vacuum or inert gas flow, at or above ambient temperature.B9223.1.7 physical adsorption (van der Waals adsorption),n
17、the binding of an adsorbate to the surface of a solid byforces whose energy levels approximate those of condensation.B9223.1.8 surface area, nthe total area of the surface of apowder or solid including both external and accessible internalsurfaces (from voids, cracks, open porosity, and fissures); t
18、hearea may be calculated by the BET equation from gas adsorp-tion data obtained under specific conditions; it is useful toexpress this value as the specific surface area, for example,surface area per unit mass of sample (m2/kg). B9223.1.9 surface area (BET), nthe total surface area of a solidcalcula
19、ted by the BET equation, from gas adsorption dataobtained under specific conditions.3.1.10 surface area, specific, nthe area, per unit mass of agranular or powdered or formed porous solid, of all externalplus internal surfaces that are accessible to a penetrating gas orliquid. B9224. Summary of Test
20、 Method4.1 An appropriate filter is pre-weighed to the nearest 1 10-8kg (0.01 mg), outgassed, and the background surface areameasured prior to nanoparticle collection in an inhalationexposure chamber. A sufficient amount of nanoparticles (toprovide at least the minimum surface area required for reli
21、ableresults for the instrument used) are collected on the filter, thefilter with particles is post-weighed, outgassed, and totalsurface area measured. The surface area concentration of theairborne nanoparticles in the exposure chamber is estimated bysubtracting the background filter surface area fro
22、m the totalsurface area of the filter with nanoparticles and normalized bythe volume of air sampled, with the final result expressed asm2/m3(LeBouf et al., 2011) (5).4.2 Multipoint BET AnalysesVolume of gas adsorbed at77 K (liquid nitrogen temperature) is determined as 10-6m3(cm3) corrected to stand
23、ard temperature and pressure for aminimum of five relative pressures within the linear BETtransformation range of the physical adsorption isothermcharacteristic of the filter and/or nanoparticle. The linear rangeis that which results in a least squares correlation coefficient of0.999 or greater for
24、the relationship between BET transforma-tion and relative pressure. Typically, the linear range includesrelative pressures between 0.05 and 0.30.4.3 It is important to use an analytical balance to determinethe sample mass. The physical adsorption instrument measuresthe total amount of gas adsorbed o
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