适用于光谱应用的光纤耦合荧光光源

IF 0.5 Q4 OPTICS Photonics Letters of Poland Pub Date : 2022-09-30 DOI:10.4302/plp.v14i3.1164
V. Vladev, T. Eftimov, S. Bozhkov, K. Nikolova, S. Minkova, Denitsa E Blazheva, G. Angelova, Maria S Brazkova
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Chychłowski, \"Chemically tuned light source with an optical pump\", Photonics Lett. Pol. 13(2), 46 (2021). CrossRef J. Żmojda, P. Miluski, M. Kochanowicz, J. Dorosz, A. Baranowska, M. Leśniak and D. Dorosz, \"Luminescent properties of active optical fibers\", Photonics Lett. Pol. 11(2), 50 (2019). CrossRef K. Jakubowski, W. Kerkemeyer, E. Perret, M. Heuberger, R. Hufenus, \"Liquid-core polymer optical fibers for luminescent waveguide applications\", Mater. Des. 196, 1 (2020). CrossRef V. Vladev, T. Eftimov, \"Fiberized fluorescent dye microtubes\", Proc. SPIE 8770, 87700V-1 (2013). CrossRef V. Vladev, T. Eftimov, W. Bock, \"Broad-band fluorescent all-fiber source based on microstructured optical fibers\", Photonics Lett. Pol., 7(2), 41 (2015). CrossRef V. Vladev, T. Eftimov, W. Bock, \"Fluorescent all-fiber light source based on micro-capillaries and on microstructured optical fibers terminated with a microbulb\", Opt. Comm. 356, 34 (2015). CrossRef V. Vladev, T. Eftimov, S. Nedev, \"Excitation efficiency of a side-pumped fiberized fluorescent dye microcapillary\", Opt. Fib. Tech. 28, 28 (2016). CrossRef V. Vladev, M. Todorova, V. Slavchev, M. Brazkova, E. Belina, S. Bozhkov, P. Radusheva, \"A new basic structure suitable for a fully integrated all-fiber-optic stimulated emission dye source\", J. Phys.: Conf. Ser. 1859 (012059), 1 (2021). CrossRef V. P. Vladev, M. M. Todorova, M. S. Brazkova, S. I. Bozhkov, \"Diode-pumped all-fiber-optic liquid dye laser\", Laser Phys. Lett. 18 (11), 115103 (2021), CrossRef G. Dyankov, T. A. Eftimov, N. Malinowski, E. Belina, H. Kisov, P. Mikulic, W. J. Bock, \"A highly efficient biosensor based on MAPLE deposited hemoglobin on LPGs around phase matching turning point\", Opt. Laser Technol. 123, 1 (2020). CrossRef T. Eftimov, G. Dyankov, A. Arapova, P. Kolev and V. Vladev, W4.73 , OFS-27, Optical Fiber Sensor Conference - 2022, 29 Aug- 2 Sept., The Westin Alexandria, Alexandria, Virginia, USA. CrossRef G. Rossi, J. Durek, S. Ojha, O. K. Schlüter, \"Fluorescence-based characterisation of selected edible insect species: Excitation emission matrix (EEM) and parallel factor (PARAFAC) analysis\", CRFS 4, 862 (2021). CrossRef L. Li, Y. Wang, W. Zhang, S. Yu, X. Wang, N. Gao, \"New advances in fluorescence excitation-emission matrix spectroscopy for the characterization of dissolved organic matter in drinking water treatment: A review Author links open overlay panel\", Chem. Eng. J. 381, 1 (2020). CrossRef","PeriodicalId":20055,"journal":{"name":"Photonics Letters of Poland","volume":" ","pages":""},"PeriodicalIF":0.5000,"publicationDate":"2022-09-30","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Fiber-coupled fluorescence light source suitable for spectroscopic applications\",\"authors\":\"V. Vladev, T. Eftimov, S. Bozhkov, K. Nikolova, S. Minkova, Denitsa E Blazheva, G. 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引用次数: 0

摘要

本文介绍了一种与光纤完全兼容的荧光宽带光源的实验研究,目的是将其用于激发发射矩阵荧光光谱。将填充有罗丹明6G甘油溶液的光纤玻璃套圈用于光源的基本构造。套圈与光纤耦合以照射染料介质并接收荧光信号。通过单色仪实现了以1nm的偏移在528nm和660nm之间调谐来自光源的光谱。全文:PDF参考文献。Hoinka和T.Fuhrmann Lieker,“论文中的放大自发辐射”,科学。Rep.9,1(2019),CrossRef J.Włodarski,M.Chychł; owski,“带光泵的化学调谐光源”,Photonics Lett。波尔。13(2),46(2021)。CrossRef J.Żmojda、P.Miluski、M.Kochanowicz、J.Dorosz、A.Baranowska、M.Leśniak和D.Dorosz,“有源光纤的发光特性”,Photonics Lett。波尔。11(2),50(2019)。CrossRef K.Jakubowski,W.Kerkemeyer,E.Perret,M.Heuberger,R.Huvenus,“用于发光波导应用的液芯聚合物光纤”,Mater。Des。196,1(2020)。CrossRef V.Vladev,T.Eftimov,“纤维化荧光染料微管”,Proc。SPIE 877087700v-1(2013)。CrossRef V.Vladev,T.Eftimov,W.Bock,“基于微结构光纤的宽带荧光全光纤源”,Photonics Lett。Pol。,7(2),41(2015)。CrossRef V.Vladev,T.Eftimov,W.Bock,“基于微毛细管和用微棒端接的微结构化光纤的荧光全光纤光源”,Opt。Comm.356,34(2015)。CrossRef V.Vladev,T.Eftimov,S.Nedev,“侧面泵浦纤维化荧光染料微毛细管的激发效率”,Opt。纤维。Tech.28,28(2016)。CrossRef V.Vladev,M.Todorova,V.Slavchev,M.Brazkova,E.Belina,S.Bozhkov,P.Radusheva,“适用于完全集成的全光纤受激发射染料源的新的基本结构”,J.Phys.:Conf.Ser。1859(012059),1(2021)。CrossRef V.P.Vladev,M.M.Todorova,M.S.Brazkova,S.I.Bozhkov,“二极管泵浦全光纤液体染料激光器”,激光物理。Lett。18(11),115103(2021),CrossRef G.Dyankov,T.A.Eftimov,N.Malinowski,E.Belina,H.Kisov,P.Mikulic,W.J.Bock,“一种基于MAPLE的高效生物传感器,在相位匹配转折点附近将血红蛋白沉积在LPG上”,Opt。激光技术。123,1(2020)。CrossRef T.Eftimov、G.Dyankov、A.Arapova、P.Kolev和V.Vladev,W4.73,OFS-27,光纤传感器会议-2022,8月29日至9月2日,美国弗吉尼亚州亚历山大市威斯汀酒店,862(2021)。CrossRef L.Li,Y.Wang,W.Zhang,S.Yu,X.Wang,N.Gao,“荧光激发发射矩阵光谱法表征饮用水处理中溶解有机物的新进展:综述作者链接开放覆盖面板”,化学。Eng.J.381,1(2020)。CrossRef
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Fiber-coupled fluorescence light source suitable for spectroscopic applications
An experimental study of a fluorescent broadband light source fully compatible with optical fibers is presented in the article, with the aim of using it for excitation-emission matrix fluorescence spectroscopy. A fiber optic glass ferrule filled with a solution of Rhodamine 6G in glycerin was used for the basic construction of the light source. The ferrule is coupled with optical fibers to illuminate the dye medium and to receive the fluorescent signal. A tuning of the light spectrum from the source between 528 nm and 660 nm with a shift of 1 nm is achieved by means of a monochromator. Full Text: PDF ReferencesN. Hoinka and T. Fuhrmann-Lieker, "Amplified Spontaneous Emission in Paper", Sci. Rep. 9, 1 (2019), CrossRef J. Włodarski, M. Chychłowski, "Chemically tuned light source with an optical pump", Photonics Lett. Pol. 13(2), 46 (2021). CrossRef J. Żmojda, P. Miluski, M. Kochanowicz, J. Dorosz, A. Baranowska, M. Leśniak and D. Dorosz, "Luminescent properties of active optical fibers", Photonics Lett. Pol. 11(2), 50 (2019). CrossRef K. Jakubowski, W. Kerkemeyer, E. Perret, M. Heuberger, R. Hufenus, "Liquid-core polymer optical fibers for luminescent waveguide applications", Mater. Des. 196, 1 (2020). CrossRef V. Vladev, T. Eftimov, "Fiberized fluorescent dye microtubes", Proc. SPIE 8770, 87700V-1 (2013). CrossRef V. Vladev, T. Eftimov, W. Bock, "Broad-band fluorescent all-fiber source based on microstructured optical fibers", Photonics Lett. Pol., 7(2), 41 (2015). CrossRef V. Vladev, T. Eftimov, W. Bock, "Fluorescent all-fiber light source based on micro-capillaries and on microstructured optical fibers terminated with a microbulb", Opt. Comm. 356, 34 (2015). CrossRef V. Vladev, T. Eftimov, S. Nedev, "Excitation efficiency of a side-pumped fiberized fluorescent dye microcapillary", Opt. Fib. Tech. 28, 28 (2016). CrossRef V. Vladev, M. Todorova, V. Slavchev, M. Brazkova, E. Belina, S. Bozhkov, P. Radusheva, "A new basic structure suitable for a fully integrated all-fiber-optic stimulated emission dye source", J. Phys.: Conf. Ser. 1859 (012059), 1 (2021). CrossRef V. P. Vladev, M. M. Todorova, M. S. Brazkova, S. I. Bozhkov, "Diode-pumped all-fiber-optic liquid dye laser", Laser Phys. Lett. 18 (11), 115103 (2021), CrossRef G. Dyankov, T. A. Eftimov, N. Malinowski, E. Belina, H. Kisov, P. Mikulic, W. J. Bock, "A highly efficient biosensor based on MAPLE deposited hemoglobin on LPGs around phase matching turning point", Opt. Laser Technol. 123, 1 (2020). CrossRef T. Eftimov, G. Dyankov, A. Arapova, P. Kolev and V. Vladev, W4.73 , OFS-27, Optical Fiber Sensor Conference - 2022, 29 Aug- 2 Sept., The Westin Alexandria, Alexandria, Virginia, USA. CrossRef G. Rossi, J. Durek, S. Ojha, O. K. Schlüter, "Fluorescence-based characterisation of selected edible insect species: Excitation emission matrix (EEM) and parallel factor (PARAFAC) analysis", CRFS 4, 862 (2021). CrossRef L. Li, Y. Wang, W. Zhang, S. Yu, X. Wang, N. Gao, "New advances in fluorescence excitation-emission matrix spectroscopy for the characterization of dissolved organic matter in drinking water treatment: A review Author links open overlay panel", Chem. Eng. J. 381, 1 (2020). CrossRef
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