Journal articles on the topic 'UV'

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1

Son, Hee-Jong, Hoon-Sik Yoom, Seong-Ho Jang, Han-Soo Kim, Soon-Heon Hong, Woo-Sik Park, and Young-Chae Song. "Removal of Tetracycline Antibiotics Using UV and UV/H2O2Systems in Water." Journal of Environmental Science International 23, no. 7 (July 31, 2014): 1359–66. http://dx.doi.org/10.5322/jesi.2014.23.7.1359.

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2

Tan, Chaoqun, Naiyun Gao, Yang Deng, Yongji Zhang, Minghao Sui, Jing Deng, and Shiqing Zhou. "Degradation of antipyrine by UV, UV/H2O2 and UV/PS." Journal of Hazardous Materials 260 (September 2013): 1008–16. http://dx.doi.org/10.1016/j.jhazmat.2013.06.060.

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3

Kim, Kyoung-Jin, and Ok-Hyun Park. "A Comparative Study on Degradation of BTEX Vapor by O3/UV, TiO2/UV, and O3/TiO2/UV System with Operating Conditions." Journal of Korean Society for Atmospheric Environment 24, no. 1 (February 29, 2008): 91–99. http://dx.doi.org/10.5572/kosae.2008.24.1.091.

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4

Honigsmann, Herbert, and Thomas L. Diepgen. "UV-Hauttumoren. UV-induced Skin Cancers." Journal der Deutschen Dermatologischen Gesellschaft 3, s2 (September 2005): S26—S31. http://dx.doi.org/10.1111/j.1610-0387.2005.04395.x.

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5

Taylor, David. "To UV or not to UV." Physics World 28, no. 7 (July 2015): 18. http://dx.doi.org/10.1088/2058-7058/28/7/29.

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6

MILLER, J. "UV radiation measurements and UV index." Journal of the European Academy of Dermatology and Venereology 11 (September 1998): S78. http://dx.doi.org/10.1016/s0926-9959(98)94851-6.

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7

Lee, Young-Min, Gowoon Lee, Taeyeon Kim, and Kyung-Duk Zoh. "Degradation of benzophenone-8 in UV/oxidation processes: Comparison of UV/H2O2, UV/persulfate, UV/chlorine processes." Journal of Environmental Chemical Engineering 12, no. 1 (February 2024): 111623. http://dx.doi.org/10.1016/j.jece.2023.111623.

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8

Lipiak, Jan. "Badania i rozwój: UV kontra LED UV - dwie technologie suszenia promianiami UV." OPAKOWANIE 1, no. 9 (September 5, 2019): 85–92. http://dx.doi.org/10.15199/42.2019.9.1.

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9

Nir, E., Ch Janzen, P. Imhof, K. Kleinermanns, and M. S. de Vries. "Guanine tautomerism revealed by UV–UV and IR–UV hole burning spectroscopy." Journal of Chemical Physics 115, no. 10 (September 8, 2001): 4604–11. http://dx.doi.org/10.1063/1.1391443.

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10

Iyoshi, Shuso, Hiroto Miyake, Ken-ichiro Nakamatsu, and Shinji Matsui. "UV-Curable Resins Appropriate for UV Nanoimprint." Journal of Photopolymer Science and Technology 21, no. 4 (2008): 573–81. http://dx.doi.org/10.2494/photopolymer.21.573.

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11

Okamura, Haruyuki, Shoichi Niizeki, Tetsumi Ochi, and Akikazu Matsumoto. "UV Curable Formulations for UV-C LEDs." Journal of Photopolymer Science and Technology 29, no. 1 (2016): 99–104. http://dx.doi.org/10.2494/photopolymer.29.99.

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12

Safonova, M., R. Mohan, A. G. Sreejith, and Jayant Murthy. "Predicting UV sky for future UV missions." Astronomy and Computing 1 (February 2013): 46–53. http://dx.doi.org/10.1016/j.ascom.2013.03.001.

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13

Borràs, V. J., J. González-Vázquez, M. Klinker, and F. Martín. "UV-pump/UV-probe spectroscopy of N2." Journal of Physics: Conference Series 1412 (January 2020): 072037. http://dx.doi.org/10.1088/1742-6596/1412/7/072037.

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14

Toda, Kiyoshi. "Biological Effects of UV." JOURNAL OF THE ILLUMINATING ENGINEERING INSTITUTE OF JAPAN 77, no. 3 (1993): 128–31. http://dx.doi.org/10.2150/jieij1980.77.3_128.

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15

Pavelets, S. Yu. "ZnTe-based UV sensors." Semiconductor Physics Quantum Electronics and Optoelectronics 19, no. 2 (July 6, 2016): 197–200. http://dx.doi.org/10.15407/spqeo19.02.197.

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16

Longarte, Asier, Carolina Redondo, José A. Fernández, and Fernando Castaño. "IR/UV and UV/UV double-resonance study of guaiacol and eugenol dimers." Journal of Chemical Physics 122, no. 16 (April 22, 2005): 164304. http://dx.doi.org/10.1063/1.1881232.

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17

Kim, Young-Seok, Kil-Mok Shong, Sun-Bae Bang, Chong-Min Kim, Myeong-Il Choi, and Woo-Jin Kim. "Development of UV-IR Camera using IR Module and Improved UV Filter Transmittance." Journal of the Korean Institute of Illuminating and Electrical Installation Engineers 26, no. 12 (December 31, 2012): 37–43. http://dx.doi.org/10.5207/jieie.2012.26.12.037.

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18

Sasaki, Masako. "Earth Was Once Exposed To UV-C; UV In The Photo-Environment." JOURNAL OF THE ILLUMINATING ENGINEERING INSTITUTE OF JAPAN 80, no. 1 (1996): 18–23. http://dx.doi.org/10.2150/jieij1980.80.1_18.

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19

NISHIBE, Yasunari. "UV Ink." Journal of the Japan Society of Colour Material 70, no. 8 (1997): 547–54. http://dx.doi.org/10.4011/shikizai1937.70.547.

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20

Khachikian, E. Ye. "UV-Galaxies." Symposium - International Astronomical Union 121 (1987): 65–79. http://dx.doi.org/10.1017/s0074180900154920.

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At the present time the previously used term “Peculiar galaxy” is gradually being replaced by the term “active” galaxy. This is quite natural, because the overwhelming majority of “peculiar” galaxies turned out to be “active” at the same time. The opposite is not correct: there are a lot of examples where a galaxy looking normal is physically active.
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21

SARASIN, A. "UV carcinogenesis." Journal of the European Academy of Dermatology and Venereology 11 (September 1998): S2. http://dx.doi.org/10.1016/s0926-9959(98)94531-7.

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22

Chaffey, N. "UV-damage." Trends in Plant Science 6, no. 1 (January 2001): 11. http://dx.doi.org/10.1016/s1360-1385(00)01845-8.

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23

Riemer, M. "UV-Schutzgesetz." Der Hautarzt 57, no. 12 (December 2006): 1133–37. http://dx.doi.org/10.1007/s00105-006-1241-5.

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24

Andro, Karl-Heinz. "DALE-UV." Trauma und Berufskrankheit 4, Supplement 3 (October 1, 2002): s219—s222. http://dx.doi.org/10.1007/s10039-002-0614-y.

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25

Wolf, P. "UV-Filter." Der Hautarzt 60, no. 4 (March 25, 2009): 285–93. http://dx.doi.org/10.1007/s00105-008-1623-y.

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26

Seppa, Nathan. "UV Blocker." Science News 170, no. 13 (September 23, 2006): 196. http://dx.doi.org/10.2307/4017195.

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27

Gieskes, Winfried W. C. "UV Radiation." Journal of Phycology 36, no. 4 (August 26, 2000): 790–91. http://dx.doi.org/10.1046/j.1529-8817.2000.03642-3.x.

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28

Bubenzer, Rainer H. "UV-Filter." Onkologische Welt 14, no. 07 (November 2023): 367. http://dx.doi.org/10.1055/a-2148-7786.

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Mit einigem Vergnügen für die Zuhörer versuchte der Chemiker Dr. Christian Cremer, Grenzach-Wyhlen, einige der gängigen Mythen rund um UV-Filter aufzulösen. Nach einer kurzen Darstellung unrealistischer Medienmeldung aus jüngster Zeit, etwa der Forderung, Sonnencremes dünner aufzutragen, um Umweltschäden zu reduzieren, beschäftigte er sich mit einigen Fehleinschätzungen.
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29

OSAKI, Takeshi. "Development of UV Curable Resin for UV Nanoimprint." Journal of the Japan Society for Precision Engineering 86, no. 4 (April 5, 2020): 259–62. http://dx.doi.org/10.2493/jjspe.86.259.

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30

Bozzi, A., A. Lopez, G. Mascolo, and G. Tiravanti. "Pharmaceuticals degradation by UV and UV/H2O2 treatments." Water Supply 2, no. 2 (April 1, 2002): 19–26. http://dx.doi.org/10.2166/ws.2002.0041.

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The degradation by UV and UV/H2O2 treatments of the pharmaceutical intermediate 5-methyl-1,3,4-thiadiazole-2-methylthiol (MMTD-Me) has been investigated and compared to that of its parent compound [5-methyl-1,3,4-thiadiazole-2-thiol (MMTD)] previously studied. The investigation has been carried out with a 17 W low pressure mercury lamp, at room temperature, with an initial MMTD-Me concentration of 1 mg/l and with a molar ratio H2O2/substrate of 100/1. The results show that: (i) the complete MMTD-Me removal is achieved within 60 and 20 minutes by UV and UV/H2O2 treatment respectively; (ii) the UV only irradiation does not cause any MMTD-Me mineralization; (iii) the UV/H2O2 treatment, after 4 hours, leads to a complete mineralization of MMTD-Me organic sulfur and to a partial mineralization of carbon and nitrogen (79 and 16% respectively). Degradation by-products identification, performed by HPLC-UV-MS, revealed that the UV only irradiation gives rise to the sequential transformation of MMTD-Me into two by-products one of which, the last one, accumulates in the solution. Conversely, the UV/H2O2 treatment leads to the formation of two intermediate by-products that undergo further degradation with the breakdown of the thiadiazole ring. These results confirm the effectiveness of UV based processes, alone or in combination with H2O2, in degrading pharmaceutical intermediates.
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31

Sheth, Saahil, Era Jain, Amin Karadaghy, Sana Syed, Hunter Stevenson, and Silviya P. Zustiak. "UV Dose Governs UV-Polymerized Polyacrylamide Hydrogel Modulus." International Journal of Polymer Science 2017 (2017): 1–9. http://dx.doi.org/10.1155/2017/5147482.

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Polyacrylamide (PAA) hydrogels have become a widely used tool whose easily tunable mechanical properties, biocompatibility, thermostability, and chemical inertness make them invaluable in many biological applications, such as cell mechanosensitivity studies. Currently, preparation of PAA gels involves mixtures of acrylamide, bisacrylamide, a source of free radicals, and a chemical stabilizer. This method, while generally well accepted, has its drawbacks: long polymerization times, unstable and toxic reagents, and tedious preparation. Alternatively, PAA gels could be made by free radical polymerization (FRP) using ultraviolet (UV) photopolymerization, a method which is quicker, less tedious, and less toxic. Here, we describe a simple strategy based on total UV energy for determining the optimal UV crosslinking conditions that lead to optimal hydrogel modulus.
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32

Wu, Changlong, Hilla Shemer, and Karl G. Linden. "Photodegradation of Metolachlor Applying UV and UV/H2O2." Journal of Agricultural and Food Chemistry 55, no. 10 (May 2007): 4059–65. http://dx.doi.org/10.1021/jf0635762.

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33

Lin, Hong, Xia Wan, Zhongjie Li, Xuesong Jiang, Qingkang Wang, and Jie Yin. "Photoreversible Resists for UV Nanoimprint Lithography (UV-NIL)." ACS Applied Materials & Interfaces 2, no. 7 (June 24, 2010): 2076–82. http://dx.doi.org/10.1021/am100330s.

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34

Jendritzky, G., H. Staiger, and K. Bucher. "UV prognosis and UV index services in Europe." Melanoma Research 6, SUPPLEMENT 1 (September 1996): S14. http://dx.doi.org/10.1097/00008390-199609001-00037.

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35

Kobayashi, Kei, Nobuji Sakai, Shinji Matsui, and Masaru Nakagawa. "Fluorescent UV-Curable Resists for UV Nanoimprint Lithography." Japanese Journal of Applied Physics 49, no. 6 (June 21, 2010): 06GL07. http://dx.doi.org/10.1143/jjap.49.06gl07.

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36

Trapido, Marina, Arja Hirvonen, Yelena Veressinina, Johanna Hentunen, and Rein Munter. "Ozonation, Ozone/UV and UV/H2O2Degradation of Chlorophenols." Ozone: Science & Engineering 19, no. 1 (January 1997): 75–96. http://dx.doi.org/10.1080/01919519708547319.

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37

Shugarov, A., I. Savanov, M. Sachkov, P. Jerram, I. Moody, P. Pool, P. Turner, R. Pittock, S. Kuzin, and N. Waltham. "UV detectors for spectrographs of WSO-UV project." Astrophysics and Space Science 354, no. 1 (April 4, 2014): 169–75. http://dx.doi.org/10.1007/s10509-014-1911-1.

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38

Constantin, Lucian Alexandru, Mirela Alina Constantin, Ines Nitoi, Toma Galaon, Valeriu Robert Badescu, and Nicolae Ionut Cristea. "COMPARISON OF FLUTAMIDE DEGRADATION VIA UV/TIO2, UV/H2O2 AND UV/H2O2/TIO2 SYSTEMS." Romanian Journal of Ecology & Environmental Chemistry 2, no. 1 (July 31, 2020): 4–10. http://dx.doi.org/10.21698/rjeec.2020.101.

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Synthetic solutions of flutamide were subject to degradation using three advanced oxidation systems, namely UV/TiO2, UV/H2O2 and UV/H2O2/TiO2. Optimum conditions and degradation kinetics has been established for all three systems. The experimental results showed that all three systems can be successfully used for flutamide degradation with efficiencies higher than 99% and that advanced oxidation processes are showing good potential for degradation of organic pollutants that cannot be suitable removed/degraded using conventional wastewater treatment processes.
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39

Xu, Xiang-Rong, Xiao-Yan Li, Xiang-Zhong Li, and Hua-Bin Li. "Degradation of melatonin by UV, UV/H2O2, Fe2+/H2O2 and UV/Fe2+/H2O2 processes." Separation and Purification Technology 68, no. 2 (August 2009): 261–66. http://dx.doi.org/10.1016/j.seppur.2009.05.013.

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40

Park, Sang Seo, Yun Gon Lee, and Jung Hyun Kim. "Impact of UV-A radiation on erythemal UV and UV-index estimation over Korea." Advances in Atmospheric Sciences 32, no. 12 (October 16, 2015): 1639–46. http://dx.doi.org/10.1007/s00376-015-4231-7.

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41

Pablos, Cristina, Javier Marugán, Rafael van Grieken, and Elena Serrano. "Emerging micropollutant oxidation during disinfection processes using UV-C, UV-C/H2O2, UV-A/TiO2 and UV-A/TiO2/H2O2." Water Research 47, no. 3 (March 2013): 1237–45. http://dx.doi.org/10.1016/j.watres.2012.11.041.

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42

Qureshi, Tahir Imran, and Young-Ju Kim. "UV-OXIDATIVE TREATMENT OF BIO-REFRACTORY ORGANIC HALOGENS IN LEACHATE: Comparison Between UV/O3, UV/H2O2, and UV/H2O2/O3Processes." Environmental Engineering Research 11, no. 2 (April 30, 2006): 84–90. http://dx.doi.org/10.4491/eer.2006.11.2.084.

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43

MURANAKA, Akio. "Energy Saving UV Printing Process and High Sensitivity UV Curing Type Ink." Journal of the Japan Society of Colour Material 87, no. 3 (2014): 94–97. http://dx.doi.org/10.4011/shikizai.87.94.

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44

ROSARIO, REINALDO, GENE J. MARK, JOHN A. PARRISH, and MARTIN C. MIHM. "Histological changes produced in skin by equally erythemogenic doses of UV-A, UV-B, UV-C and UV-A with psoralens." British Journal of Dermatology 101, no. 3 (July 29, 2006): 299–308. http://dx.doi.org/10.1111/j.1365-2133.1979.tb05623.x.

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45

Chen, Tianyi, Chengjin Wang, Susan Andrews, and Ron Hofmann. "Effects of UV Light Path Length and Wavelength on UV/Chlorine versus UV/H2O2 Efficacy." ACS ES&T Water 1, no. 5 (March 30, 2021): 1145–52. http://dx.doi.org/10.1021/acsestwater.0c00175.

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46

Maclure, Daniel M., Jonathan J. D. McKendry, Mohamed Sufyan Islim, Enyuan Xie, Cheng Chen, Xiaobin Sun, Xudong Liang, et al. "10 Gbps wavelength division multiplexing using UV-A, UV-B, and UV-C micro-LEDs." Photonics Research 10, no. 2 (February 1, 2022): 516. http://dx.doi.org/10.1364/prj.445984.

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47

Kim, Hyun Young, Tae-Hun Kim, and Seungho Yu. "Photolytic degradation of sulfamethoxazole and trimethoprim using UV-A, UV-C and vacuum-UV (VUV)." Journal of Environmental Science and Health, Part A 50, no. 3 (January 16, 2015): 292–300. http://dx.doi.org/10.1080/10934529.2015.981118.

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48

Slezarikova, Viera, Frantisek Masek, Miroslav Pirsel, and Milena Sedliakova. "The pre-UV nutritional stresses increase UV resistance, decrease UV mutagenesis and inhibit excision repair." Mutation Research/DNA Repair 385, no. 3 (December 1997): 213–22. http://dx.doi.org/10.1016/s0921-8777(97)00044-x.

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49

Acosta-Rangel, A., M. Sánchez-Polo, A. M. S. Polo, J. Rivera-Utrilla, and M. S. Berber-Mendoza. "Sulfonamides degradation assisted by UV, UV/H2O2 and UV/K2S2O8: Efficiency, mechanism and byproducts cytotoxicity." Journal of Environmental Management 225 (November 2018): 224–31. http://dx.doi.org/10.1016/j.jenvman.2018.06.097.

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50

Inokuchi, Yoshiya, Yusuke Kobayashi, Takafumi Ito, and Takayuki Ebata. "Conformation ofl-Tyrosine Studied by Fluorescence-Detected UV−UV and IR−UV Double-Resonance Spectroscopy." Journal of Physical Chemistry A 111, no. 17 (May 2007): 3209–15. http://dx.doi.org/10.1021/jp070163a.

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