LEADER 05641nam 22007575a 450 001 9911020238003321 005 20210114075037.0 010 $a1-280-55692-7 010 $a9786610556922 010 $a0-471-32657-7 010 $a0-471-72119-0 035 $a(CKB)1000000000018922 035 $a(MH)009068057-X 035 $a(SSID)ssj0000305978 035 $a(PQKBManifestationID)11256825 035 $a(PQKBTitleCode)TC0000305978 035 $a(PQKBWorkID)10293942 035 $a(PQKB)10297902 035 $a(MiAaPQ)EBC4957340 035 $a(Au-PeEL)EBL4957340 035 $a(CaONFJC)MIL55692 035 $a(OCoLC)65187124 035 $a(EXLCZ)991000000000018922 100 $a20030325d2003 uy| 0 101 0 $aeng 135 $aurcnu|||||||| 181 $ctxt 182 $cc 183 $acr 200 10$aPhotoacoustic infrared spectroscopy /$fKirk H. Michaelin$b[electronic resource] 210 $aNew York $cWiley$d2003 215 $a1 online resource (xii, 335 p. )$cill. ; 225 0 $aChemical analysis Photoacoustic infrared spectroscopy 225 0$aChemical analysis ;$vv. 159, [161] 300 $aBibliographic Level Mode of Issuance: Monograph 311 $a0-471-13477-5 320 $aIncludes bibliographical references and indexes. 327 $gChapter 1. Introduction -- 1.1.$tSingle- and multiple-wavelength PA spectroscopies --$g1.2.$tScope --$g1.3.$tOther sources of information --$gChapter 2.$tEvolution of photoacoustic infrared spectroscopy --$g2.1.$tEarly history --$g2.2.$tMultiple-wavelength PA infrared spectroscopy --$g2.3.$tArrival of PA FTIR spectroscopy --$gChapter 3.$tExperimental methods --$g3.1.$tPA infrared spectroscopy with dispersive spectrometers --$g3.2.$tRapid-scan PA FTIR spectroscopy --$g3.3.$tStep-scan PA FTIR spectroscopy --$g3.4.$tPhotothermal beam deflection spectroscopy --$g3.5.$tReverse mirage spectroscopy --$g3.6.$tPiezoelectric detection --$g3.7.$tOptothermal window spectroscopy --$gChapter 4.$tDepth profiling --$g4.1.$tAmplitude modulation --$g4.2.$tPhase modulation-$g4.3.$tGeneralized two-dimensional correlation --$gChapter 5.$tNumerical methods --$g5.1.$tNormalization of PA infrared spectra --$g5.2.$tLinearization of spectra --$g5.3.$tPhase analysis --$gChapter 6.$tApplications of PA infrared spectroscopy --$g6.1.$tCarbons --$g6.2.$tCoals --$g6.3.$tHydrocarbons --$g6.4.$tHydrocarbon fuels --$g6.5.$tCorrosion --$g6.6.$tClays and clay minerals --$g6.7.$tWood and paper --$g6.8.$tPolymers --$g6.9.$tGases --$g6.10.$tFood products --$g6.11.$tBiology and biochemistry --$g6.12.$tMedical applications --$g6.13.$tCarbonyl compounds --$g6.14.$tTextiles --$g6.15.$tCatalysts --$gChapter 7.$tQuantitative analysis --$g7.1.$tQuantitation in PA near-infrared spectroscopy --$g7.2.$tQuantitation in PA mid-infrared spectroscopy --$g7.3.$tQuantitative analysis at higher concentrations --$gChapter 8.$tSpecial topics --$g8.1.$tPA infrared microspectroscopy --$g8.2.$tSynchrotron PA infrared spectroscopy. 330 $aPhotoacoustic infrared spectroscopy differs from traditional infrared spectroscopy in one important way: in its most common implementation, a microphone is used to detect acoustic waves that result from absorption of infrared radiation by a sample. In other words, no optical detector is required to quantify the amount of incident radiation taken up by the sample. This gas-microphone method is one of a series of photoacoustic and photothermal techniques now being used for characterization and analysis of solids, liquids, and gases. Photoacoustic Infrared Spectroscopy represents the most comprehensive resource on this important, emerging technique. Kirk Michaelian?s trenchant study serves as both a text and reference for a broad community of academic and industrial scientists conducting extensive research and applications in photoacoustic infrared spectroscopy. Chapters include: Evolution of Photoacoustic Infrared Spectroscopy Experimental Methods Depth Profiling Numerical Methods Applications of Photoacoustic Infrared Spectroscopy Quantitative Analysis Special TopicsPhysicists, chemists, and spectroscopists in both academic and industrial laboratories, polymer and organic chemists, analysts in industry, forensic and government laboratories, and materials scientists will find Photoacoustic Infrared Spectroscopy to be a vital resource. 410 0$aChemical Analysis: a Series of Monographs on Analytical Chemistry and Its Applications 606 $aInfrared spectroscopy 606 $aOptoacoustic spectroscopy 606 $aInfrared spectroscopy 606 $aOptoacoustic spectroscopy 606 $aAnalytical Chemistry$2HILCC 606 $aLight & Optics$2HILCC 606 $aPhysics$2HILCC 606 $aChemistry$2HILCC 606 $aPhysical Sciences & Mathematics$2HILCC 615 0$aInfrared spectroscopy. 615 0$aOptoacoustic spectroscopy. 615 0$aInfrared spectroscopy. 615 0$aOptoacoustic spectroscopy. 615 7$aAnalytical Chemistry 615 7$aLight & Optics 615 7$aPhysics 615 7$aChemistry 615 7$aPhysical Sciences & Mathematics 676 $a535.8/42 700 $aMichaelin$b Kirk H$01838954 801 0$bPQKB 906 $aBOOK 912 $a9911020238003321 996 $aPhotoacoustic infrared spectroscopy$94418054 997 $aUNINA 999 $aThis Record contains information from the Harvard Library Bibliographic Dataset, which is provided by the Harvard Library under its Bibliographic Dataset Use Terms and includes data made available by, among others the Library of Congress