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Expressions that allow the optimization of the phase shifts experienced by the fundamental and generated waves are presented for nonlinear quadratic processes, second-harmonic generation and sum-frequency mixing. In the case of seeding at the generated wavelength, the phase shift of the fundamental wave is due to two interactions: (i) a cubic one, based on coupled second-order processes (cascade cubic nonlinearity) and (ii) single quadratic interaction with participation of the seeding wave. By comparison with the exact numerical solution, we defined the input parameters of the beams for which this analytical approach is valid. It is shown that phase shifts exceeding π\u002F2 can be correctly predicted using the expressions obtained.",{"EN":104,"VI":105},"Analytical formulae for the optimization of the process of low-power phase modulation in a quadratic nonlinear medium","Các công thức giải tích cho việc tối ưu hóa quá trình điều chế pha công suất thấp trong môi trường phi tuyến bậc hai",{"VOID":107},"H.J. Bakker, P.C.M. Planken, L. Kuipers, A. Lagendijk: Phys. Rev. A42, 4085 (1990)\nR. DeSalvo, D.J. Hagan, M. Sheik-Bahae, G. Stegeman, E.W. Van Stryland, H. Vanherzeele: Opt. Lett.17, 28 (1992)\nG.I. Stegeman, M. Sheik-Bahae, E.W. Van Stryland, G. Assanto: Opt. Lett.18, 13 (1993)\nD.C. Hutchings, J.S Aitchison, C.N. Ironside: Opt. Lett.18, 793 (1993)\nA.L. Belostotsky, A.S. Leonov, A.V. Meleshko: Opt. Lett.19, 856 (1994)\nA.V. Smith, M.S. Bowers: J. Opt. Soc. Am. B12, 49 (1995)\nH. Tan, G.P. Banfi, A. Tomaselli: Appl. Phys. Lett.63, 2472 (1993)\nS. Nitti, H.M. Tan, G.P. Banfi, V. Degiorgio: Opt. Commun.106, 263 (1993)\nA. Re, C. Sibilia, E. Fazio, M. Bertolotti: J. Mod. Opt.42, 823 (1995)\nG. Assanto, G. Stegeman, M. Sheik-Bahae, E. Van Stryland: Appl. Phys. Lett.62, 1323 (1993)\nG. Assanto, G. Stegeman, M. Sheik-Bahae, E. Van Stryland: IEEE J. QE-31, 673 (1995)\nN.R. Belashenkov, S.V. Gagarskii, M.V. Inochkin: Opt Spectrosc. (USSR)66, 1383 (1989)\nC.N. Ironside, J.S. Aitchison, J.M. Arnold: IEEE J. QE-29, 2650 (1993)\nP.S Russell: Electron. Lett.29, 1228 (1993)\nS.M. Saltiel, K.R. Koynov, I.H. Buchvarov: Bulg. J. Phys.22, 39 (1995)\nD.J. Hagan, Z. Wang, G. Stegeman, E.W. Van stryland, M. Sheik-Bahae, G. Assanto: Opt. Lett.19, 1305 (1994)\nZ.A. Tagiev, A.S. Chirkin: Zh. Eksp. Teor. Fiz. (USSR)73, 1271 (1977)\nK. Stankov: Appl. Phys. B45, 191 (1988)\nM. Danailov, G. Cerullo, V. Magni, D. Segala, S. De silvestri: Opt. 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Ultra-short terawatt laser pulses are used to induce two-photon-excited fluorescence (2PEF) in riboflavin-containing particles at a remote location. We show that, in the case of amino acid detection, 2PEF-lidar should be more efficient than linear 1PEF-lidar beyond a typical distance of 2 km, because it takes advantage of the higher atmospheric transmission at the excitation wavelengths. 2PEF-lidar moreover allows size measurement by pump–probe schemes, and pulse shaping may improve the detection selectivity. ",{"EN":224,"VI":225},"Remote detection and identification of biological aerosols using a femtosecond terawatt lidar system","Phát hiện và nhận dạng từ xa sol khí sinh học bằng hệ thống lidar femto giây terawatt",{"VOID":227},"J.-P. Wolf: in Encyclopedia of Analytical Chemistry, ed. by R.A. Meyers (Wiley, Chichester 2000) pp. 2226–2245\nJ. Kasparian, M. Rodriguez, G. Méjean, J. Yu, E. Salmon, H. Wille, R. Bourayou, S. Frey, Y.B. Andre, A. Mysyrowicz, R. Sauerbrey, J.P. Wolf, L. Woeste: Science 301, 61 (2003)\nH. Wille, M. Rodriguez, J. Kasparian, D. Mondelain, J. Yu, A. Mysyrowicz, R. Sauerbrey, J.P. Wolf, L. Woeste: Eur. Phys. J. D 20, 183 (2002)\nS.C. Hill, V. Boutou, J. Yu, S. Ramstein, J.P. Wolf, Y. Pan, S. Holler, R.K. Chang: Phys. Rev. Lett. 85, 54 (2000)\nJ.P. Wolf, Y. Pan, S. Holler, G.M. Turner, M.C. Beard, R.K. Chang, A. Schmuttenmaer: Phys. Rev. A 64, 023808-1 (2001)\nL. Méès, J.P. Wolf, G. Gouesbet, G. Gréhan: Opt. Commun. 208, 371 (2002)\nT. Brixner, N. Damrauer, P. Niklaus, G. Gerber: Nature 414, 57 (2001)\nR.J. Levis, G.M. Menkir, H. Rabitz: Science 292, 709 (2001)\nY.S. Cheng, E.B. Barr, B.J. Fan, P.J. Hargis, D.J. Rader, T.J. O’Hern, J.R. Torczynski, G.C. Tisone, B.L. Preppernau, S.A. Young, R.J. Radloff, S.L. Miller, J.M. Macher: Aerosol Sci. Technol. 30, 186 (1999)\nS.C. Hill, R.G. Pinnick, S. Niles, Y.L. Pan, S. Holler, R.K. Chang, J.R. Bottiger, B.T. Chen, C.S. Orr, G. Feather: Field Anal. Chem. Technol. 3, 221 (1999)\nG.W. Faris, R.A. Copland, K. Mortelmans, B.V. Bronk: Appl. Opt. 36, 958 (1997)\nM. Lippitz, W. Erker, H. Decker, K.E. van Holde, T. Basche: Proc. Natl. Acad. Sci. 99, 2772 (2002)\nA. Rehms, P. Callis: Chem. Phys. Lett. 208, 276 (1993)\nR.M. Measures: Laser Remote Sensing, Fundamentals and Applications (Wiley–Interscience, New York 1984)\nB. Wattelier, C. Sauteret, J.-C. Chanteloup, A. Migus: Opt. 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Zarov: Opto-acoustic method in laser spectroscopy, inNew Methods of Spectroscopy (Nauka, Novosibirsk 1982)",{},{"id":553,"createTime":554,"updateTime":555,"relativeEntities":556,"slug":557,"properties":558,"entityType":110,"verifyStatus":111,"verifyTime":569,"verifyNote":113,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":570,"fullTextUrl":22,"authors":571,"publicationType":161,"publisherRelationship":600,"citationCount":22,"citationInfo":22,"publishDate":648,"publishYear":649,"citationAnalyzeStatus":650,"lastCitationAnalyze":651,"indexDatabases":652,"openAccess":22,"references":22,"isForceReanalyzing":213},"29cd427e-64c3-4fc7-8173-26fe7b5e0aa4","2024-02-10T02:12:14.447+00:00","2026-08-18T21:34:33.443+00:00",[],"Precise-surface-temperature-measurements-from-400-to-1200-K-using-the-Pr-YAG-phosphor",{"abstract":559,"title":561,"gsPaper":563,"references":565,"doi":567},{"EN":560},"The thermographic phosphor Pr:YAG was investigated for lifetime-based surface temperature measurements using 4f–4f emission from its \n                \n                  \n                \n                $$^{3}\\hbox {P}_{J}$$\n                \n               states. A thin phosphor coating was applied to a fused silica substrate and placed in a tube furnace for diagnostic characterization. Lifetime measurements were performed from room temperature to 1200 K in 100-K increments. The emission lifetime was found to decrease continuously from \n                \n                  \n                \n                $$7\\,\\upmu \\hbox {s}$$\n                \n               at room temperature to 200 ns at 1200 K, making Pr:YAG a promising phosphor for applications involving fast transient phenomena. At each temperature, 100 single-shot measurements were acquired to evaluate phosphor performance. Single-shot temperature precision better than 2 K was measured from 400 to 1200 K. A methodology was developed for in-situ single-shot temperature precision estimates using weighted linear regression statistics. The precision predictions were compared to experimental results and agreement was generally within 1 K over the entire temperature range. The ability to precisely resolve temperature over large ranges in an applied environment was demonstrated using a propane torch to expose the phosphor-coated substrate to high heat fluxes. Measured temperature increased from room temperature to approximately 1150 K during the experimental duration, with estimated precision better than 4 K over the entire range",{"EN":562},"Precise surface temperature measurements from 400 to 1200 K using the Pr:YAG phosphor",{"VOID":564},"[]",{"VOID":566},"S. Caputo, F. Millo, G. Boccardo, A. Piano, G. Cifali, F.C. Pesce, Numerical and experimental investigation of a piston thermal barrier coating for an automotive diesel engine application. Appl. Therm. Eng. 162, 114233 (2019)\nT. Powell, R. O’Donnell, M. Hoffman, Z. Filipi, E.H. Jordan, R. Kumar, N.J. Killingsworth, Experimental investigation of the relationship between thermal barrier coating structured porosity and homogeneous charge compression ignition engine combustion. Int. J. Engine Res. 2, 1468087419843752 (2019)\nM. Andrie, S. Kokjohn, S. Paliwal, L.S. Kamo, A. Kamo, D. Procknow, Low heat capacitance thermal barrier coatings for internal combustion engines, Report 0148-7191, SAE Technical Paper (2019)\nN. Uchida, A review of thermal barrier coatings for improvement in thermal efficiency of both gasoline and diesel reciprocating engines. Int. J. Eng. Res. 20, 1468087420978016 (2020)\nJ.C. Saputo, G.M. Smith, H. Lee, S. Sampath, E. Gingrich, M. Tess, Thermal swing evaluation of thermal barrier coatings for diesel engines. J. Therm. Spray Technol. 20, 1–15 (2020)\nN. Killingsworth, T. Powell, R. O’Donnell, Z. Filipi, M. Hoffman, Modeling the effect of thermal barrier coatings on HCCI engine combustion using CFD simulations with conjugate heat transfer (2019-04-02 2019). https:\u002F\u002Fdoi.org\u002F10.4271\u002F2019-01-0956\nE. Gingrich, M. Tess, V. Korivi, P. Schihl, J. Saputo, G.M. Smith, S. Sampath, J. Ghandhi, The impact of piston thermal barrier coating roughness on high-load diesel operation. Int. J. Engine Res. 20, 1468087419893487 (2019)\nP. Andruskiewicz, P. Najt, R. Durrett, R. Payri, Assessing the capability of conventional in-cylinder insulation materials in achieving temperature swing engine performance benefits. Int. J. Engine Res. 19(6), 599–612 (2018)\nZ. Filipi, M. Hoffman, R. O’Donnell, T. Powell, E. Jordan, R. Kumar, Enhancing the efficiency benefit of thermal barrier coatings for homogeneous charge compression ignition engines through application of a low-k oxide. Int. J. Engine Res. 20, 1468087420918406 (2020)\nJ. Somhorst, W. Uczak De Goes, M. Oevermann, M. Bovo, Experimental evaluation of novel thermal barrier coatings in a single cylinder light duty diesel engine (2019-09-09 2019)\nY. Wakisaka, M. Inayoshi, K. Fukui, H. Kosaka, Y. Hotta, A. Kawaguchi, N. Takada, Reduction of heat loss and improvement of thermal efficiency by application of “temperature swing’’ insulation to direct-injection diesel engines. SAE Int. J. Engines 9(3), 1449–1459 (2016)\nQ. Fouliard, S. Haldar, R. Ghosh, S. Raghavan, Modeling luminescence behavior for phosphor thermometry applied to doped thermal barrier coating configurations. Appl. Opt. 58(13), D68–D75 (2019)\nQ. Fouliard, J. Hernandez, B. Heeg, R. Ghosh, S. Raghavan, Phosphor thermometry instrumentation for synchronized acquisition of luminescence lifetime decay and intensity on thermal barrier coatings. Meas. Sci. Technol. 31(5), 054007 (2020)\nJ.I. Eldridge, A.C. Wroblewski, D. Zhu, M.D. Cuy, D.E. Wolfe, K. Irsee, Temperature mapping above and below air film-cooled thermal barrier coatings using phosphor thermometry\nC. Binder, H. Feuk, M. Richter, Phosphor thermometry for in-cylinder surface temperature measurements in diesel engines. J. Luminescence 20, 117415 (2020)\nN. Fuhrmann, C. Litterscheid, C.P. Ding, J. Brübach, B. Albert, A. Dreizler, Cylinder head temperature determination using high-speed phosphor thermometry in a fired internal combustion engine. Appl. Phys. B 116(2), 293–303 (2014)\nN. Fuhrmann, E. Baum, J. Brübach, A. Dreizler, High-speed phosphor thermometry. Rev. Sci. Instrum. 82(10), 104903 (2011)\nN. Fuhrmann, J. Brübach, A. Dreizler, Phosphor thermometry: a comparison of the luminescence lifetime and the intensity ratio approach. Proc. Combust. Inst. 34(2), 3611–3618 (2013). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.proci.2012.06.084\nS.W. Allison, G.T. Gillies, Remote thermometry with thermographic phosphors: instrumentation and applications. Rev. Sci. Instrum. 68(7), 2615–2650 (1997)\nA.H. Khalid, K. Kontis, Thermographic phosphors for high temperature measurements: principles, current state of the art and recent applications. Sensors 8(9), 5673–5744 (2008)\nJ. Brübach, C. Pflitsch, A. Dreizler, B. Atakan, On surface temperature measurements with thermographic phosphors: a review. Prog. Energy Combust. Sci. 39(1), 37–60 (2013)\nK. Tsuchiya, K. Sako, N. Ishiwada, T. Yokomori, Precision evaluation of phosphors for the lifetime method in phosphor thermometry. Meas. Sci. Technol. 31(6), 065005 (2020)\nN.J. Neal, J. Jordan, D. Rothamer, Simultaneous measurements of in-cylinder temperature and velocity distribution in a small-bore diesel engine using thermographic phosphors. SAE Int. J. Engines 6(2013–01–0562), 300–318 (2013)\nJ. Jordan, D. Rothamer, Pr:yag temperature imaging in gas-phase flows. Appl. Phys. B 110(3), 285–291 (2013). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00340-012-5274-4\nD. Witkowski, D.A. Rothamer, Emission properties and temperature quenching mechanisms of rare-earth elements doped in garnet hosts. J. Lumin. 192, 1250–1263 (2017)\nN. Fuhrmann, M. Schild, D. Bensing, S.A. Kaiser, C. Schulz, J. Brübach, A. Dreizler, Two-dimensional cycle-resolved exhaust valve temperature measurements in an optically accessible internal combustion engine using thermographic phosphors. Appl. Phys. B 106(4), 945–951 (2012)\nS. Weisberg, Applied Linear Regression, vol. 528 (Wiley, New York, 2005)\nJ. Brübach, J. Janicka, A. Dreizler, An algorithm for the characterisation of multi-exponential decay curves. Opt. Lasers Eng. 47(1), 75–79 (2009)\nM.D. Dramićanin, B. Milićević, V. Orević, Z. Ristić, J. Zhou, D. Milivojević, J. Papan, M. G. Brik, C. Ma, A. M. Srivastava, Li2tio3: Mn4+ deep- red phosphor for the lifetime- based luminescence thermometry. ChemistrySelect 4(24), 7067–7075 (2019)\nJ.D. Ingle, S.R. Crouch, Signal-to-noise ratio comparison of photomultipliers and phototubes. Anal. Chem. 43(10), 1331–1334 (1971)",{"VOID":568},"10.1007\u002Fs00340-021-07723-5","2024-09-04T17:09:43.203+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs00340-021-07723-5",[572,587],{"id":573,"sortIndex":23,"researcher":22,"roles":574,"affiliations":575,"properties":584,"displayName":586,"givenName":22,"familyName":22},"23cd4b8b-c1f8-410c-898e-b474d3e98c7f",[121],[576],{"id":577,"sortIndex":23,"affiliation":578,"properties":22},"1779b8f2-2e6a-4dec-9f0e-a7a5bc43f9de",{"id":577,"createTime":22,"updateTime":22,"relativeEntities":579,"slug":22,"properties":580,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":583,"statistic":22},[],{"title":581},{"VI":582},"University of Wisconsin-Madison, Madison, USA",[],{"title":585},{"VI":586},"Dustin Witkowski",{"id":588,"sortIndex":85,"researcher":22,"roles":589,"affiliations":590,"properties":597,"displayName":599,"givenName":22,"familyName":22},"956fe986-7cc1-492d-a489-0f943ee89c89",[121],[591],{"id":577,"sortIndex":23,"affiliation":592,"properties":22},{"id":577,"createTime":22,"updateTime":22,"relativeEntities":593,"slug":22,"properties":594,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":596,"statistic":22},[],{"title":595},{"VI":582},[],{"title":598},{"VI":599},"David A. Rothamer",{"url":570,"publisher":601,"properties":643},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":602,"slug":10,"properties":603,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":607,"manageAffiliations":612,"indexDatabases":623,"url":22,"thumbnailPath":22,"statistic":638,"gsStatistic":22,"type":89,"analyzePriority":22},[],{"issn":604,"title":605,"eissn":606},{"VOID":15},{"EN":17},{"VOID":13},[608],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":609,"label":610,"description":611,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},[613,618],{"id":33,"createTime":22,"updateTime":22,"relativeEntities":614,"slug":22,"properties":615,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":617,"statistic":22},[],{"title":616},{"EN":37},[39],{"id":41,"createTime":22,"updateTime":22,"relativeEntities":619,"slug":22,"properties":620,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":622,"statistic":22},[],{"title":621},{"EN":45},[39],[624,631],{"id":49,"indexDatabase":625,"url":62,"indexYears":22,"academicFieldIds":630,"indexDatabaseRanking":22},{"id":51,"createTime":22,"updateTime":22,"relativeEntities":626,"label":627,"description":628,"key":58,"publicationTags":629,"standard":22},[],{"EN":54,"VI":54},{"EN":56,"VI":57},[60,61],[64,65],{"id":67,"indexDatabase":632,"url":78,"indexYears":79,"academicFieldIds":637,"indexDatabaseRanking":82},{"id":69,"createTime":22,"updateTime":22,"relativeEntities":633,"label":634,"description":635,"key":75,"publicationTags":636,"standard":22},[],{"EN":72,"VI":72},{"EN":72,"VI":74},[77],[81],{"impactFactor":23,"impactFactorByYear":639,"i10Index":23,"i10IndexLast5Year":23,"totalPublication":85,"totalPublicationByYear":640,"totalCitation":23,"totalCitationByYear":641,"totalCitationPerPublication":23,"totalCitationPerPublicationByYear":642,"hindexLast5Year":23,"hindex":23},{},{"2010":85},{},{},{"pages":644,"volume":646},{"VOID":645},"1-10",{"VOID":647},"127","2021-11-30",2021,"ERROR_IN_GET_PLATFORM_ID","2026-08-18T21:34:33.442+00:00",[60,82],{"id":654,"createTime":655,"updateTime":656,"relativeEntities":657,"slug":658,"properties":659,"entityType":110,"verifyStatus":111,"verifyTime":670,"verifyNote":113,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":671,"fullTextUrl":22,"authors":672,"publicationType":161,"publisherRelationship":753,"citationCount":23,"citationInfo":801,"publishDate":804,"publishYear":802,"citationAnalyzeStatus":487,"lastCitationAnalyze":656,"indexDatabases":805,"openAccess":22,"references":22,"isForceReanalyzing":213},"fcbfc131-2d37-447f-8103-f3f608c05b1f","2024-02-08T01:09:10.667+00:00","2026-08-18T20:57:30.406+00:00",[],"Frequency-agile-rapid-scanning-spectroscopy-absorption-sensitivity-of-2-10-12-cm-1-Hz-1-2-with-a-tunable-diode-laser",{"abstract":660,"title":662,"gsPaper":664,"references":666,"doi":668},{"EN":661},"We present ultrasensitive measurements of molecular absorption using frequency-agile rapid scanning, cavity ring-down spectroscopy with an external-cavity diode laser. A microwave source that drives an electro-optic phase modulator with a bandwidth of 20 GHz generates pairs of sidebands on the probe laser. The optical cavity provides for high sensitivity and filters the carrier and all but a single, selected sideband. Absorption spectra were acquired by stepping the tunable sideband from mode-to-mode of the ring-down cavity at a rate that was limited only by the cavity decay time. This approach allows for scanning rates of 8 kHz per cavity resonance, a minimum detectable absorption coefficient of 1.7 × 10−11 cm−1 after only 20 ms of averaging, and a noise-equivalent absorption coefficient of 1.7 × 10−12 cm−1 Hz−1\u002F2. By comparison with cavity-enhanced laser absorption spectrometers reported in the literature, the present system is, to the best of our knowledge, among the most sensitive and has by far the highest spectrum scanning rate.",{"EN":663},"Frequency-agile, rapid scanning spectroscopy: absorption sensitivity of 2 × 10−12 cm−1 Hz−1\u002F2 with a tunable diode laser",{"VOID":665},"[\"14236873494059142127\"]",{"VOID":667},"L. Gianfrani, R.W. Fox, L. Hollberg, J. Opt. Soc. Am. B 16(12), 2247 (1999)\nC. Ishibashi, H. Sasada, Jpn. J. Appl. Phys. 38 (2A), 920 (1999)\nD.A. Long, A. Cygan, R.D. van Zee, M. Okumura, C.E. Miller, D. Lisak, J.T. Hodges, Chem. Phys. Lett. 536, 1 (2012)\nR.Z. Martinez, M. Metsala, O. Vaittinen, T. Lantta, L. Halonen, J. Opt. Soc. Am. B 23(4), 727 (2006)\nT.G. Spence, C.C. Harb, B.A. Paldus, R.N. Zare, B. Willke, R.L. Byer, Rev. Sci. Instrum. 71(2), 347 (2000)\nJ. Ye, L.S. Ma, J.L. Hall, J. Opt. Soc. Am. B 15(1), 6 (1998)\nP. Ehlers, I. Silander, J. Wang, O. Axner, 29(6), 1305 (2012)\nV.M. Baev, T. Latz, P.E. Toschek, Appl. Phys. B 69(3), 171 (1999)\nY. He, B.J. Orr, Appl. Phys. B 79(8), 941 (2004)\nH.F. Huang, K.K. Lehmann, J. Phys. Chem. A 115(34), 9411 (2011)\nI. Debecker, A.K. Mohamed, D. Romanini, Opt. Express 13(8), 2906 (2005)\nG.-W. Truong, K. O. Douglass, S. E. Maxwell, R. D. Van Zee, D. F. Plusquellic, J. T. Hodges, D. A. Long, Nature Photon. 7, 532 (2013)\nJ.T. Hodges, H.P. Layer, W.W. Miller, G.E. Scace, Rev. Sci. Instrum. 75(4), 849 (2004)\nK. O. Douglass, S. E. Maxwell, G.-W. Truong, R. D. Van Zee, J. T. Hodges, D. A. Long, D. F. Plusquellic, In preparation (2013)\nR.W.P. Drever, J.L. Hall, F.V. Kowalski, J. Hough, G.M. Ford, A.J. Munley, H. Ward, Appl. Phys. B 31(2), 97 (1983)\nH. Huang, K. Lehmann, Appl. Phys. B 94(2), 355 (2009)\nA. Cygan, D. Lisak, P. Maslowski, K. Bielska, S. Wojtewicz, J. Domyslawska, R.S. Trawinski, R. Ciurylo, H. Abe, J.T. Hodges, Rev. Sci. Instrum. 82(6), 063107 (2011)\nD.W. Allan, Proc. IEEE 54(2), 221 (1966)\nL.S. Rothman, I.E. Gordon, A. Barbe, D.C. Benner, P.F. Bernath, M. Birk, V. Boudon, L.R. Brown, A. Campargue, J.P. Champion, K. Chance, L.H. Coudert, V. Dana, V.M. Devi, S. Fally, J.M. Flaud, R.R. Gamache, A. Goldman, D. Jacquemart, I. Kleiner, N. Lacome, W.J. Lafferty, J.Y. Mandin, S.T. Massie, S.N. Mikhailenko, C.E. Miller, N. Moazzen-Ahmadi, O.V. Naumenko, A.V. Nikitin, J. Orphal, V.I. Perevalov, A. Perrin, A. Predoi-Cross, C.P. Rinsland, M. Rotger, M. Simecková, M.A.H. Smith, K. Sung, S.A. Tashkun, J. Tennyson, R.A. Toth, A.C. Vandaele, J. Vander Auwera, J. Quant. Spectrosc. Radiat. Transfer 110(9–10), 533 (2009)\nG.-W. Truong, D.A. Long, A. Cygan, D. Lisak, R.D. Van Zee, J.T. Hodges, J. Chem. Phys. 138, 094201 (2013)\nK. Nakagawa, T. Katsuda, A.S. Shelkovnikov, M. Delabachelerie, M. Ohtsu, Opt. Commun. 107(5–6), 369 (1994)\nN. Bucalovic, V. Dolgovskiy, C. Schori, P. Thomann, G. Di Domenico, S. Schilt, Appl. Optics 51(20), 4582 (2012)\nS.G. Rautian, I.I. Sobelman, Sov. Phys. Usp. 9(5), 701 (1967)",{"VOID":669},"10.1007\u002Fs00340-013-5548-5","2024-05-16T06:48:17.673+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs00340-013-5548-5",[673,690,712,725,740],{"id":674,"sortIndex":23,"researcher":22,"roles":675,"affiliations":676,"properties":685,"displayName":687,"givenName":22,"familyName":22},"2d4298c2-e8df-4013-b7cf-5d37043924bb",[121],[677],{"id":678,"sortIndex":23,"affiliation":679,"properties":22},"19e2bcbb-b81d-40f3-a7fd-67465bb4e51c",{"id":678,"createTime":22,"updateTime":22,"relativeEntities":680,"slug":22,"properties":681,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":684,"statistic":22},[],{"title":682},{"VI":683},"National Institute of Standards and Technology, Gaithersburg, USA",[],{"title":686,"gsAuthor":688},{"VI":687},"D. A. Long",{"VOID":689},"[\"IwAKaVkAAAAJ\"]",{"id":691,"sortIndex":85,"researcher":22,"roles":692,"affiliations":693,"properties":709,"displayName":711,"givenName":22,"familyName":22},"f781f272-f953-44d3-9835-e17ec8aa8bb6",[121],[694,700],{"id":678,"sortIndex":23,"affiliation":695,"properties":22},{"id":678,"createTime":22,"updateTime":22,"relativeEntities":696,"slug":22,"properties":697,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":699,"statistic":22},[],{"title":698},{"VI":683},[],{"id":701,"sortIndex":85,"affiliation":702,"properties":708},"92418791-fa0f-46e8-b58c-e518e59b5a46",{"id":701,"createTime":22,"updateTime":22,"relativeEntities":703,"slug":22,"properties":704,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":707,"statistic":22},[],{"title":705},{"VI":706},"Frequency Standards and Metrology Research Group, School of Physics, The University of Western Australia, Perth, Australia",[],{},{"title":710},{"VI":711},"G.-W. Truong",{"id":713,"sortIndex":149,"researcher":22,"roles":714,"affiliations":715,"properties":722,"displayName":724,"givenName":22,"familyName":22},"8e794361-9eb5-44ea-a9d3-bfa3a602292f",[121],[716],{"id":678,"sortIndex":23,"affiliation":717,"properties":22},{"id":678,"createTime":22,"updateTime":22,"relativeEntities":718,"slug":22,"properties":719,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":721,"statistic":22},[],{"title":720},{"VI":683},[],{"title":723},{"VI":724},"R. 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Hodges",{"url":671,"publisher":754,"properties":796},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":755,"slug":10,"properties":756,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":760,"manageAffiliations":765,"indexDatabases":776,"url":22,"thumbnailPath":22,"statistic":791,"gsStatistic":22,"type":89,"analyzePriority":22},[],{"issn":757,"title":758,"eissn":759},{"VOID":15},{"EN":17},{"VOID":13},[761],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":762,"label":763,"description":764,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},[766,771],{"id":33,"createTime":22,"updateTime":22,"relativeEntities":767,"slug":22,"properties":768,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":770,"statistic":22},[],{"title":769},{"EN":37},[39],{"id":41,"createTime":22,"updateTime":22,"relativeEntities":772,"slug":22,"properties":773,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":775,"statistic":22},[],{"title":774},{"EN":45},[39],[777,784],{"id":49,"indexDatabase":778,"url":62,"indexYears":22,"academicFieldIds":783,"indexDatabaseRanking":22},{"id":51,"createTime":22,"updateTime":22,"relativeEntities":779,"label":780,"description":781,"key":58,"publicationTags":782,"standard":22},[],{"EN":54,"VI":54},{"EN":56,"VI":57},[60,61],[64,65],{"id":67,"indexDatabase":785,"url":78,"indexYears":79,"academicFieldIds":790,"indexDatabaseRanking":82},{"id":69,"createTime":22,"updateTime":22,"relativeEntities":786,"label":787,"description":788,"key":75,"publicationTags":789,"standard":22},[],{"EN":72,"VI":72},{"EN":72,"VI":74},[77],[81],{"impactFactor":23,"impactFactorByYear":792,"i10Index":23,"i10IndexLast5Year":23,"totalPublication":85,"totalPublicationByYear":793,"totalCitation":23,"totalCitationByYear":794,"totalCitationPerPublication":23,"totalCitationPerPublicationByYear":795,"hindexLast5Year":23,"hindex":23},{},{"2010":85},{},{},{"pages":797,"volume":799},{"VOID":798},"489-495",{"VOID":800},"114",{"total":23,"publishYear":802,"statisticByYear":803},2013,{},"2013-08-03",[60,82],{"id":807,"createTime":808,"updateTime":809,"relativeEntities":810,"slug":811,"properties":812,"entityType":110,"verifyStatus":111,"verifyTime":823,"verifyNote":113,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":824,"fullTextUrl":22,"authors":825,"publicationType":161,"publisherRelationship":856,"citationCount":23,"citationInfo":904,"publishDate":907,"publishYear":905,"citationAnalyzeStatus":487,"lastCitationAnalyze":908,"indexDatabases":909,"openAccess":22,"references":22,"isForceReanalyzing":213},"3d17f866-f64a-4508-80eb-77600de49028","2024-02-05T20:01:53.156+00:00","2026-08-18T01:40:42.480+00:00",[],"The-potential-of-CO2-laser-photoacoustic-spectrometry-for-detection-of-methanol-in-alcoholic-beverage",{"abstract":813,"title":815,"gsPaper":817,"references":819,"doi":821},{"EN":814},"The first use of CO2 laser photoacoustic measurements for detecting the methanol contents in alcohol-like solutions is presented. With an intracavity cell configuration, the minimum detectable concentration was ∼200 ppm for methanol and the linear range of the calibration curve for methanol was from 200 to 70000 ppm. For demonstrating the reliability of analysis in alcoholic beverages, a series of different concentrations of two-component samples was prepared and measured by the same procedures. The results showed the feasibility on determining methanol and ethanol contents accurately within a specific tolerance, limited mainly by background signal and laser stability. This potential method with no pre-treatment of samples takes only ∼10 min to finish one single measurement. It suggests that the PA detection is suitable for routine diagnosis of adulterated wines in commercial products.",{"EN":816},"The potential of CO2 laser photoacoustic spectrometry for detection of methanol in alcoholic beverage",{"VOID":818},"[\"10917898717056670910\"]",{"VOID":820},"AOAC Official Methods of Analysis, 15th edn., 739 (1990)\nS.A. Savchuk, V.N. Vlasov, S.A. Appolonova, V.N. Arbuzov, A.N. Vedenin, A.B. Mezinov, B.R. Grigor’yan, J. Anal. Chem. 56, 214 (2001)\nR.A. Peinado, J.A. Moreno, D. Munoz, M. Medina, J. Moreno, J. Agric. Food Chem. 52, 6389 (2004)\nT. Cabaroglu, Food Contr. 16, 177 (2005)\nP. Hess (ed.), Topics in Current Physics: Photoacoustic, Photothermal and Photochemical Processes in Gases (Springer, Berlin, 1989)\nS.Y. Shaw, R.S. Chang, Appl. Phys. B 67, 39 (1998)\nM.B. Pushkarsky, M.E. Webber, O. Baghdassarain, L.R. Narasimhan, C.K.N. Patel, Appl. Phys. B 75, 391 (2002)\nG. Busse, K.F. Renk, Infrared Phys. 18, 517 (1978)\nM. Inguscio, N. Ioli, A. Moretti, F. Strumia, F. D’Amato, Int. J. Infrared Milim. Waves 5, 1615 (1984)\nG. Merkle, J. Heppner, Opt. Commun. 51, 265 (1984)\nE.K. Plyler, J. Res. NBS 48, 281 (1952)\nF. Tang, J.O. Henningsen, Appl. Phys. B 44, 93 (1987)\nM.S. Shumate, R.T. Menzies, J.S. Margolis, L.-G. Rosengren, Appl. Opt. 15, 2480 (1976)\nJ.C. Peterson, M.E. Thomas, R.J. Nordstrom, E.K. Damon, R.K. Long, Appl. Opt. 18, 834 (1979)\nG.L. Loper, M.A. O’Neill, J.A. Gelbwachs, Appl. 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