ASTM E925-2009 2500 Standard Practice for Monitoring the Calibration of Ultraviolet-Visible Spectrophotometers whose Spectral Slit Width does not Exceed 2 nm《光谱狭缝宽度不超过2nm的紫外线-可见光分光.pdf
《ASTM E925-2009 2500 Standard Practice for Monitoring the Calibration of Ultraviolet-Visible Spectrophotometers whose Spectral Slit Width does not Exceed 2 nm《光谱狭缝宽度不超过2nm的紫外线-可见光分光.pdf》由会员分享,可在线阅读,更多相关《ASTM E925-2009 2500 Standard Practice for Monitoring the Calibration of Ultraviolet-Visible Spectrophotometers whose Spectral Slit Width does not Exceed 2 nm《光谱狭缝宽度不超过2nm的紫外线-可见光分光.pdf(7页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: E925 09Standard Practice forMonitoring the Calibration of Ultraviolet-VisibleSpectrophotometers whose Spectral Bandwidth does notExceed 2 nm1This standard is issued under the fixed designation E925; the number immediately following the designation indicates the year oforiginal adoption
2、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.INTRODUCTIONIn the application of spectrophotometric methods of analysis it is the respon
3、sibility of the analystto verify and validate that the instrument is functioning properly and is capable of providingacceptable analytical results. It is preferable that the verification of instrument performance beaccomplished through the use of reference materials whose properties have been accura
4、telydetermined. Such materials are readily available, and their use in the tests and measurements describedin this practice is satisfactory for evaluating the performance of spectrophotometers whose spectralbandwidth does not exceed the value for which the intrinsic or certified properties are valid
5、. Acompromise maximum permissible spectral bandwidth of 2 nm is recommended for the referencematerials and error tolerances recommended here.This practice covers some of the essential instrumental parameters that should be evaluated toensure the acceptability of the analytical data routinely obtaine
6、d on the instrument. These parametersinclude the accuracy of the wavelength and absorbance scales and stray radiant power levels.The accuracy of the wavelength scale in both the ultraviolet (UV) and visible regions is determinedusing the sharp absorption bands of a holmium oxide glass or solution fi
7、lter. The absorbance scaleaccuracy in the UV region (235350 nm) is determined using acidic solutions of potassiumdichromate. In the visible region (440635 nm) the absorbance accuracy is determined usingindividually certified neutral density glass filters. The use of these reference materials provide
8、s a validand relatively simple means to test the errors in the wavelength and absorbance scales of small spectralbandwidth spectrophotometers in the spectral ranges indicated. A simplified version of the opaquefilter method is provided as a test for excessive stray radiant energy.1. Scope1.1 This pr
9、actice covers the parameters of spectrophotomet-ric performance that are critical for testing the adequacy ofinstrumentation for most routine tests and methods2within thewavelength range of 200 to 700 nm and the absorbance rangeof 0 to 2. The recommended tests provide a measurement of theimportant p
10、arameters controlling results in spectrophotometricmethods, but it is specifically not to be inferred that all factorsin instrument performance are measured.1.2 This practice may be used as a significant test of theperformance of instruments for which the spectral bandwidthdoes not exceed 2 nm and f
11、or which the manufacturersspecifications for wavelength and absorbance accuracy do notexceed the performance tolerances employed here. This prac-tice employs an illustrative tolerance of 61 % relative for theerror of the absorbance scale over the range of 0.2 to 2.0, andof 61.0 nm for the error of t
12、he wavelength scale. A suggestedmaximum stray radiant power ratio of 4 3 10-4yields 99.99 %), where value assignment is by self assertion (Note 1).Apurchaser should require certification by the supplier that thewavelengths of the absorption bands are within 0.2-nm of thevalues given in Ref. (2), and
13、 reported below. The appropriatesolution standard is 4 % (mass fraction) holmium oxide in10 % (volume fraction) perchloric acid, contained in a 10-mmpath length cuvette. For this material, the transmittance minimaof 18 absorption bands have been certified by a multi-laboratory inter-comparison, at t
14、he highest level, allowing thepeak value assignments as an intrinsic wavelength standard (3).Absorbance maxima or transmittance minima must be locatedwithin 61 nm of the wavelengths given below:Glass FilterADilute Acidic SolutionB241.5 nmC241.1 nm. . . 249.9 nm279.3 nm 278.1 nm287.6 nm 287.2 nm333.8
15、 nm 333.5 nm. . . 345.4 nm360.8 nm 361.3 nm385.8 nm 385.6 nm418.5 nm 416.3 nm453.4 nm . . .D459.9 nm 467.8 nm. . . 485.3 nm536.4 nm 536.6 nm637.5 nm 640.5 nmAWavelengths taken from Ref. (2) for Corning Glass Works Code 3130 glass,superceded by Corning Glass Works Code 3131 glass and Kopp Glass Code
16、3131glass, for which the wavelengths are also valid.BWavelengths rounded to 0.1 nm for a 1-nm spectral bandwidth taken from Ref.(3).CMay not be usable, depending on the base glass of the filter.DPeak omitted because it resolves into a doublet at spectral bandwidth valuesless than 1 nm.NOTE 1Self ass
17、ertion may take the form of value assignment andcertification in many forms. Some specific examples are:(1) By a national metrology institute (NMI),(2)ByanISO 17025 and ISO Guide 34 accredited Reference Mate-rial producer, and(3) By a laboratory claiming traceability to an NMI.In all cases, the user
18、 should be satisfied that the quality of the valueassignment data meets the laboratory requirements.7.1.1 If the observed absorption bands of the holmium oxideglass or solution deviate by more than 61 nm from the valuesstated, then corrective service must by performed on theinstrument by qualified p
19、ersonnel. If the user performs thisservice, the manufacturers recommended procedure should befollowed carefully.7.1.2 The wavelength accuracy is dependent on the spectralbandwidth and thus on the physical bandwidth. Spectralbandwidths may be determined from the manufacturers speci-fications.7.1.3 Co
20、mputer based peak location algorithms that may beused to assign absorbance maxima or transmittance minima arediscussed in 7.6 of Guide E1866. It should be noted that peakasymmetries in the holmium oxide reference materials are suchthat digital filter widths should be smaller than the full-width-half
21、-maximum recommendation of that guide.7.1.4 In the absence of drift or slippage in the wavelengthdrive train, repeatability of the band positions should be on theorder of 60.1 nm for a given instrument, especially with theuse of a computer based peak location algorithm.7.2 Procedure:7.2.1 Examine th
22、e holmium oxide reference material andremove any surface contamination using a soft brush orlint-free cloth. Measure the temperature of the sample com-partment by placing an appropriate sensor into the cell com-partment of a stabilized instrument and replacing the compart-ment cover securely. Place
23、the sensor as close as possible to theactual position that will be occupied by the standard. After asuitable period of time record the temperature reading, removethe sensor, and resume normal operations.7.2.2 Record the blank absorbance or transmittance (airversus air) spectrum at the desired resolu
24、tion and at theappropriate wavelength intervals and scan speeds, in order toperform any necessary baseline adjustments. The wavelengthintervals should be no greater than the spectral bandwidth used.Acquire the appropriate spectrum of the holmium oxidereference material with respect to air and baseli
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