Academic literature on the topic 'Chalcogen elements'

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Journal articles on the topic "Chalcogen elements"

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Chiou, Kuen Y., and Oliver K. Manuel. "Chalcogen elements in snow: relation to emission source." Environmental Science & Technology 22, no. 4 (April 1988): 453–56. http://dx.doi.org/10.1021/es00169a014.

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Zhu, Yongfu, Yaru Wang, Jian Zhang, Chunhe Li, Zhengtong Ji, and Guojun Liu. "Effect of small amounts of chalcogen alloying elements on the oxidation resistance of copper." Corrosion Reviews 38, no. 6 (November 18, 2020): 529–36. http://dx.doi.org/10.1515/corrrev-2020-0040.

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AbstractThe effect of small amounts of chalcogen alloying elements (S, Se and Te) on the oxidation resistance (OR) of Cu has been investigated at 300–800 °C in 0.1 MPa oxygen atmospheres. Compared to pure copper, the addition of S, Se and Te could effectively improve the OR below 600 °C mainly owing to the chalcogen-element inclusions which hinder the diffusion of Cu. However, it becomes weak above 800 °C. In contrast, the failure at 800 °C is associated with the absence of those inclusions. The results are discussed in detail by the thermodynamic methods.
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Münzenberg, Jörg, Herbert W. Roesky, and Már Björgvinsson. "Chalcogen-Nitrogen Compounds of the Heavier Group 16 Elements." Phosphorus, Sulfur, and Silicon and the Related Elements 67, no. 1-4 (April 1, 1992): 39–44. http://dx.doi.org/10.1080/10426509208045817.

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Chakrahari, Kiran Kumarvarma, Arunabha Thakur, Bijan Mondal, V. Ramkumar, and Sundargopal Ghosh. "Hypoelectronic Dimetallaheteroboranes of Group 6 Transition Metals Containing Heavier Chalcogen Elements." Inorganic Chemistry 52, no. 14 (July 2, 2013): 7923–32. http://dx.doi.org/10.1021/ic400432v.

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MUENZENBERG, J., H. W. ROESKY, and M. BJOERGVINSSON. "ChemInform Abstract: Chalcogen-Nitrogen Compounds of the Heavier Group 16 Elements." ChemInform 23, no. 28 (August 21, 2010): no. http://dx.doi.org/10.1002/chin.199228314.

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Yu, Jin-Tao, Huan Guo, Yuanqiuqiang Yi, Haiyang Fei, and Yan Jiang. "The Chan-Lam Reaction of Chalcogen Elements Leading to Aryl Chalcogenides." Advanced Synthesis & Catalysis 356, no. 4 (February 7, 2014): 749–52. http://dx.doi.org/10.1002/adsc.201300853.

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Fujimori, Toshihiko. "Carbon nanotube-template synthesis of artificial one-dimensional conductors using chalcogen elements." TANSO 2016, no. 273 (2016): 89–95. http://dx.doi.org/10.7209/tanso.2016.89.

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Fujimori, Toshihiko. "Carbon nanotube-template synthesis of artificial one-dimensional conductors using chalcogen elements." Carbon 107 (October 2016): 933. http://dx.doi.org/10.1016/j.carbon.2016.06.088.

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Kadlag, Yogita, and Harry Becker. "Fractionation of highly siderophile and chalcogen elements in components of EH3 chondrites." Geochimica et Cosmochimica Acta 161 (July 2015): 166–87. http://dx.doi.org/10.1016/j.gca.2015.04.022.

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Xue, Duomei, Di Wu, Zeren Chen, Ying Li, WeiMing Sun, Jingyao Liu, and Zhiru Li. "On Close Parallels between the Zintl-Based Superatom Ge9Be and Chalcogen Elements." Inorganic Chemistry 60, no. 5 (February 16, 2021): 3196–206. http://dx.doi.org/10.1021/acs.inorgchem.0c03531.

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Dissertations / Theses on the topic "Chalcogen elements"

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Funk, Claudia [Verfasser], Carsten [Akademischer Betreuer] Münker, and Dominik [Akademischer Betreuer] Hezel. "Abundances and distribution of chalcogen volatile elements in chondritic meteorites and their components / Claudia Funk. Gutachter: Carsten Münker ; Dominik Hezel." Köln : Universitäts- und Stadtbibliothek Köln, 2015. http://d-nb.info/1071947052/34.

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Rotter, Christiane. "Matching Phosphorus and Chalcogens - New Chemistry with Old Elements." Diss., lmu, 2009. http://nbn-resolving.de/urn:nbn:de:bvb:19-110957.

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Wang, Zaicong [Verfasser]. "Constraints on mantle processes and late accretion from chalcogen and highly siderophile element abundances in rocks from the Earth’s mantle / Zaicong Wang." Berlin : Freie Universität Berlin, 2014. http://d-nb.info/1050021495/34.

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Vidovic, Denis. "Polynukleare Cluster der d-Metalle mit chelatisierenden Liganden." Doctoral thesis, [S.l.] : [s.n.], 2005. http://deposit.ddb.de/cgi-bin/dokserv?idn=97529962X.

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Βασιλειάδης, Θωμάς. "Σύνθεση χαμηλοδιάστατων νανοδομών τελλουρίου και οξειδίου του τελλουρίου μέσω φωτοαποδόμησης και φωτοοξείδωσης με laser και φασματοσκοπικός χαρακτηρισμός." Thesis, 2014. http://hdl.handle.net/10889/8383.

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Τα τελευταία έτη η σύνθεση και ο χαρακτηρισμός μονοδιάστατων νανοδομών αποκτά αυξανόμενο ερευνητικό ενδιαφέρον καθώς συνδυάζουν φαινόμενα από την νάνο κλίμακα με την δυνατότητα χειρισμού τους λόγω του μεγάλου μήκους τους. Εκτός από τα καθιερωμένα υλικά με αυτήν την μορφολογία όπως είναι οι νανοσωλήνες άνθρακα, οι νανοράβδοι οξειδίου του ψευδαργύρου και τα νανοκαλώδια πυριτίου μία κατηγορία υλικών που αναπτύσσει τέτοιες νανοδομές είναι τα χαλκογενή Σελήνιο και Τελλούριο γεγονός που εξηγείται από την υψηλής ανισοτροπίας κρυσταλλική τους δομή. Στόχος αυτής της εργασίας είναι η παραγωγή, μέσω φωτοαποδόμησης, νανοσωλήνων Τελλουρίου οι οποίοι μέσω φωτοοξείδωσης μετατρέπονται σε νανοκαλώδια Οξειδίου του Τελλουρίου. Η διερεύνηση της κινητικής του φαινομένου ανάλογα με το χρησιμοποιούμενο μήκος κύματος και την ένταση της ακτινοβολίας καθώς και ο χαρακτηρισμός των παραγόμενων νανοδομών γίνεται με φασματοσκοπία Raman. Τα συμπεράσματα στα οποία καταλήγουμε ενισχύονται από μία σειρά άλλων πειραματικών μεθόδων όπως περίθλαση ακτίνων Χ (XRD) και ηλεκτρονική μικροσκοπία σάρωσης και διέλευσης (SEM, TEM).
One dimensional (1D) nanostructures of semiconducting oxides and elemental chalcogens culminate over the last decade in nanotechnology owing to their unique properties exploitable in several applications sectors. Whereas several synthetic strategies have been established for rational design of 1D materials using solution chemistry and high temperature evaporation methods, much less attention has been given to the laser-assisted growth of hybrid nanostructures. Here, we present a laser-assisted method for the controlled fabrication of Te nanotubes. A series of light-driven phase transition is employed to controllably transform Te nanotubes to core-Te/sheath-TeO2 and/or even neat TeO2 nanowires. This solid-state laser-processing of semiconducting materials apart from offering new opportunities for the fast and spatially controlled fabrication of anisotropic nanostructures, provides a means of simultaneous growing and integrating these nanostructures into an optoelectronic or photonic device.
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Rotter, Christiane [Verfasser]. "Matching phosphorus and chalcogens - new chemistry with old elements : synthesis of unusual anions and small molecules / vorgelegt von Christiane Rotter." 2009. http://d-nb.info/1000552667/34.

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Books on the topic "Chalcogen elements"

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Oxygen and the group 6 elements. Oxford: Heinemann Library, 2003.

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Devillanova, Francesco, and Wolf-Walther Du Mont. Handbook of Chalcogen Chemistry: New Perspectives in Sulfur, Selenium and Tellurium Complete Set. Royal Society of Chemistry, The, 2013.

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Nenajdenko, Valentine, Francesco Devillanova, Wolf-Walther Du Mont, Ingo Krossing, and Peter Skabara. Handbook of Chalcogen Chemistry: New Perspectives in Sulfur, Selenium and Tellurium Volume 2. Royal Society of Chemistry, The, 2013.

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Davies, Robert, M. A. Beckett, Francesco Devillanova, Wolf-Walther Du Mont, and Mathias S. Wickleder. Handbook of Chalcogen Chemistry: New Perspectives in Sulfur, Selenium and Tellurium Volume 1. Royal Society of Chemistry, The, 2013.

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Oxygen and the Elements of Group 16 (The Periodic Table). Heinemann, 2003.

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Book chapters on the topic "Chalcogen elements"

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Papaconstantopoulos, Dimitris A. "Group 16 Elements: Chalcogens." In Handbook of the Band Structure of Elemental Solids, 375–90. Boston, MA: Springer US, 2014. http://dx.doi.org/10.1007/978-1-4419-8264-3_10.

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Bochkarev, M. N., L. N. Zakharov, and G. S. Kalinina. "The compounds with a lanthanoid-chalcogen bond." In Topics in f-Element Chemistry, 424–35. Dordrecht: Springer Netherlands, 1995. http://dx.doi.org/10.1007/978-94-011-0361-9_10.

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Sheldrick, William S. "Cages and Clusters of the Chalcogens." In Molecular Clusters of the Main Group Elements, 230–45. Weinheim, FRG: Wiley-VCH Verlag GmbH & Co. KGaA, 2005. http://dx.doi.org/10.1002/3527602445.ch2g.

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Yamaguchi, M. "From Triorganogallium Complexes and Chalcogen Elements." In Compounds of Groups 13 and 2 (Al, Ga, In, Tl, Be...Ba), 1. Georg Thieme Verlag KG, 2004. http://dx.doi.org/10.1055/sos-sd-007-00267.

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"The group 16 (chalcogen) elements: Oxygen, sulfur, selenium, tellurium and polonium." In Main Group Chemistry, edited by William Henderson, 110–27. Cambridge: Royal Society of Chemistry, 2007. http://dx.doi.org/10.1039/9781847551283-00110.

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Sączewski, F. "Functions Containing an Iminocarbonyl Group and Any Elements Other Than a Halogen or Chalcogen." In Comprehensive Organic Functional Group Transformations II, 605–60. Elsevier, 2005. http://dx.doi.org/10.1016/b0-08-044655-8/00142-2.

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Cliffe, Ian A. "Functions Containing an Iminocarbonyl Group and Any Elements Other Than a Halogen or Chalcogen." In Comprehensive Organic Functional Group Transformations, 639–75. Elsevier, 1995. http://dx.doi.org/10.1016/b0-08-044705-8/00230-2.

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"Group 16 Elements: The Chalcogens." In Arrow Pushing in Inorganic Chemistry, 202–51. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2014. http://dx.doi.org/10.1002/9781118924525.ch6.

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Romanenko, V. D., and V. L. Rudzevich. "Functions Containing at Least One Metalloid (Si, Ge, or B) and No Halogen, Chalcogen, or Group 15 Elements; Also the Synthesis of Functions Containing Three Metals." In Comprehensive Organic Functional Group Transformations II, 205–42. Elsevier, 2005. http://dx.doi.org/10.1016/b0-08-044655-8/00127-6.

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George, K. M., and G. A. Molander. "Functions Incorporating a Chalcogen and a Group 15 Element." In Comprehensive Organic Functional Group Transformations II, 323–56. Elsevier, 2005. http://dx.doi.org/10.1016/b0-08-044655-8/00073-8.

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Conference papers on the topic "Chalcogen elements"

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Derevyashkin, Sergey V., Elena A. Soboleva, Vladimir V. Shelkovnikov, Victor P. Korolkov, Anatoly I. Malyshev, and Evgeny V. Spesivtsev. "Triacrylamide polyfluorinated chalcone derivative as high resistant light-sensitive material for technology of diffractive optical elements." In Holography: Advances and Modern Trends, edited by Antonio Fimia, Miroslav Hrabovský, and John T. Sheridan. SPIE, 2019. http://dx.doi.org/10.1117/12.2521139.

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