https://oldena.lpnu.ua/handle/ntb/42072
Title: | Structural, morphological and optical properties of nanoproducts of zirconium target laser ablation in water and aqueous SDS solutions |
Other Titles: | Структурні, морфологічні та оптичні властивості нанопродуктів лазерної абляції цирконієвої мішені у воді та водних розчинах SDS |
Authors: | Karpukhin, Vyacheslav Malikov, Michael Borodina, Tatyana Valyano, George Gololobova, Olesya Strikanov, Dmitry |
Affiliation: | Joint Institute of High Temperatures, Russian Academy of Science |
Bibliographic description (Ukraine): | Structural, morphological and optical properties of nanoproducts of zirconium target laser ablation in water and aqueous SDS solutions / Vyacheslav Karpukhin, Michael Malikov, Tatyana Borodina, George Valyano, Olesya Gololobova, Dmitry Strikanov // Chemistry & Chemical Technology. — Lviv : Lviv Politechnic Publishing House, 2017. — Vol 11. — No 1. — P. 25–34. |
Bibliographic description (International): | Structural, morphological and optical properties of nanoproducts of zirconium target laser ablation in water and aqueous SDS solutions / Vyacheslav Karpukhin, Michael Malikov, Tatyana Borodina, George Valyano, Olesya Gololobova, Dmitry Strikanov // Chemistry & Chemical Technology. — Lviv : Lviv Politechnic Publishing House, 2017. — Vol 11. — No 1. — P. 25–34. |
Is part of: | Chemistry & Chemical Technology, 1 (11), 2017 |
Issue: | 1 |
Volume: | 11 |
Issue Date: | 20-Jan-2017 |
Publisher: | Lviv Politechnic Publishing House |
Keywords: | лазерна абляція нанокомпозит ZrO2 рамановські спектри laser ablation metal nanocompositions ZrO2 RAMAN spectra |
Number of pages: | 10 |
Page range: | 25-34 |
Start page: | 25 |
End page: | 34 |
Abstract: | Досліджено структурні, морфологічні та
оптичні властивості нанопродуктів лазерної абляції
цирконієвої мішені у воді та водних розчинах SDS. Залежно від
експериментальних умов зазначені продукти отримані у
вигляді оксидів у різноманітних фазових станах і органо-
неорганічних композитів, які являють собою структури з
алкільними ланцюгами SDS та знаходяться між шарами
оксидів або гідроксидів. Показано утворення близьких до
сферичних, порожнистих нано- і мікроструктур з діоксиду
цирконію. Висунуте припущення, що газа-парові пузирі, які
утворюються в процесі абляції, є темплетами для генерації
порожнистих структур. 1Structural, morphological and optical properties of nanoproducts of laser ablation of zirconium target in water and aqueous SDS solutions were investigated. Depending on experiment conditions the indicated products can appear as different crystalline phases of zirconia and organic-inorganic composites, which include SDS alkyl chains intercalated between layers of zirconium oxides or hydroxides. The formation of zirconium dioxide-based hollow nano and microstructures is demonstrated. It is suggested that ablation formed gas-vapor bubbles can serve as templets for generation of hollow structures. |
URI: | https://ena.lpnu.ua/handle/ntb/42072 |
Copyright owner: | © Національний університет „Львівська політехніка“, 2017 © Karpukhin V., MalikovM., Borodina T., Valyano G., Gololobova O., Strikanov D., 2017 |
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Phys. Chem. C., 2009, 113,13974. [61] Karpov S. and Slabko V., Opticheskie i Fotofizicheskie Svoistva Fractalno-Structuririvannykh Zolei Metallov. Ros. Acad. Nauk, Novosibirsk 2003. [62] Sahu H. and Rao G., Bull. Mater. Sci., 2000, 23, 349. [63] Geethalakshmi K., Prabhakaran T. and Hema: J. World Academy of Sci. Eng.Tech., 2012, 64, 150. [64] Pankove J., Optical Properties in Semiconductors. Prentice Hall, Englewood Cliffs, NJ 1971. [65] Lushchik Ch. and Lushchik A., Elektronnye Vozbuzhdeniya s Obrazovaniem Defectov v Tverdykh Telakh. Nauka, Moskva 1989. [66] Strekalovsky V., Polezhaev Yu. and Palguev S., Oksidy s Primesnoi Razuporyadochennostiu: Sostav, Structura, Fazovye Prevrashcheniya. Nauka, Moskva 1987. [67] Sliem M., Schmidt D., Betard A. et al., Chem. Mater., 2012,24, 4274. [68] Reddy Channu V., Kalluru R., Schlesinger M. et al., Coll. Surf. A: Physicochem. Eng. Aspects, 2011, 386, 151. [69] Neppolian B., Wang Q., Yamashita H. and Choi H., Appl. Catal. A, 2007, 333, 264. [70] Zhou J., Wu W., Caruntu D. et al., J. Phys. Chem. C., 2007,111, 17473. |
Content type: | Article |
Appears in Collections: | Chemistry & Chemical Technology. – 2017. – Vol. 11, No. 1 |
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