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Studies on Cu2SnS3 quantum dots for O-band wavelength detection

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In this communication, we report on Cu2SnS3 quantum dots synthesized by the solvothermal process using different solvents. The optical properties of the quantum dots are analyzed by UV-Vis-NIR and photoluminescence spectroscopy. The results suggest that Cu2SnS3 material has tunable energy bandgap and appropriate wavelength for fabrication of light emitting diodes and laser diodes as sources for fiber optic communication. They exhibit wide absorption in the near infrared range. Further morphological studies with the use of atomic force microscope confirm the surface topography and the existence of quantum dots. The observed characteristics prove the efficiency of Cu2SnS3 quantum dots for O-band wavelength detection used in fiber optic communication and solar cell applications.
Wydawca
Rocznik
Strony
225--229
Opis fizyczny
Bibliogr. 29 poz., rys.
Twórcy
  • Department of Electronics and Communication Engineering, E.G.S. Pillay Engineering College, Nagapattinam-611002, Tamilnadu, India
  • Department of Chemical Engineering, SSN College of Engineering, Kalavakkam-603110, Tamilnadu, India
Bibliografia
  • [1] Shen Y.R., The principles of non linear optics, Wiley-Interscience, United States, 2002.
  • [2] Boyd R.W., Nonlinear optics, Academic Press, United States, 2008.
  • [3] Xia F., Wang H., Xiao D., Dubey M., Ramasubramaniam A., Nat. Photon., 8 (2014), 899.
  • [4] Jason M., Auxier., Axel Schulzgen., Michael Morrell M., Brian R.W., Seppo Honkanen., Sabyasachi Sen., Nicholas F.B., Nasser Peyghambarian., Proc. SPIE, 5709 (2005), 249.
  • [5] Landry M.L., Morrell T.E., Karagounis T.K., Hsia C.H., Wang C.Y., J. Chem. Edu., 91 (2014), 274.
  • [6] Zhou D., Lin M., Chen Z., Sun H., Zhang H., Sun H., Yang B., Chem. Mater., 23 (2011), 4857.
  • [7] Aldona Sashchiuk., Diana Yanover., Anna Rubin Brusilovski., Georgy I.M., Richard K.C., Roman Vaxenburg., Jenya Tilchin., Gary Zaiats., Efrat Lifshitz., Nanoscale, 5 (2013), 7724.
  • [8] Sandra Dias., Kishan Kumawat., Shinjini Biswas., Salaru Babu Krupanidhi., Inorg. Chem., 56 (2017), 2198.
  • [9] Kamalanathan M., Hussain Shamima., Gopalakrishnan R., Vishista K., Mater. Technol., 2 (2017), 1.
  • [10] Asmaa Zaki M., Heba A.F., Ahmed Abd El Aziz., Moustafa H.A., IOSR J. Electron. Commun. Eng., 1 (2014), 64.
  • [11] Izawa T., Shibata N., Takeda A., Appl. Phys. Lett., 1 (1977), 33.
  • [12] Bredol M., Leers D., Boisselaar L., Hutjens M., J. Light. Technol., 10 (1990), 1536.
  • [13] Laurent Gasca Draka, Broadband Prop., 6 (2008), 83.
  • [14] Humbach O., Fabian H., Grzesik U., Haken U., Heitmann W., J. Non-Cryst. Solids, 203 (1996), 19.
  • [15] Stone J., Walrafen G.E., J. Chem. Phys., 4 (1982), 1712.
  • [16] Tang Y., Peters J.D., Bowers J.E., Opt. Express, 20 (2012), 11529.
  • [17] Turkiewicz J.P., de Waardt H., IEEE Photon. Technol. Lett., 24 (2012), 942.
  • [18] Kawamura D., Makino S., Kogo K., Matsuoka Y., Lee Y., Sugawara T., Tanaka S., 35th Eur. Conf. Exhibition Opt. Commun., (2012) 1.
  • [19] Fujisawa T., Kanazawa S., Takahata K., Ohki A., Ueda Y., Iga R., Sanjo H., Yamanaka T., Kohtoku M., Ishii H., Opt. Express, 21 (2013), 182.
  • [20] Simoyama T., Matsuda M., Okumura S., Uetake A., Ekawa M., Yamamoto T., Eur. Conf. Exhibition Opt. Commun. OSA Tech. Dig. (Optical Society of America), 2 (2012), 11.
  • [21] Tanaka T., Nishihara M., Takahara T., Li L., Tao Z., Rasmussen J.C., Proc. SPIE, 8646 (2012), 86460J-1.
  • [22] Fujisawa T., Takahata K., Kobayashi W., Tadokoro T., Fujiwara N., Kanazawa S., Kano F., Electron. Lett., 47 (2011), 708.
  • [23] Liang X., Cai Q., Xiang W., Chen Z., Zhong J., Wang Y., Shao M., Li Z., J. Mater. Sci. Technol., 29 (2013), 231.
  • [24] Partain L.D., Schneider R.A., Donaghey L.F., McLeod P.S., J. Appl. Phys., 57 (1985), 5056.
  • [25] Ettema A.R.H.F., Haas C., J. Phys. Condens. Matter, 5 (1993), 3817.
  • [26] Dias S., Krupanidhi S.B., AIP Adv., 6 (2016), 025217.
  • [27] Tiwari D., Chaudhuri T.K., Shripathi T., Deshpande U., Sathe V.G., Appl. Phys. A, 117 (2014), 1139.
  • [28] Suryawanshi M.P., Shin S.W., Ghorpade U.V., Gurav K.V., Hong C.W., Agawane G.L., Vanalakar S.A., Moon J.H., Yun J.H., Patil P.S., Kim J.H., Moholkar A.V., Electrochim. Acta, 150 (2014), 136.
  • [29] Uma V.G., Mahesh P.S., Seung Wook Shin., Inyoung Kim., Seung Kyu Ahn., Jae Ho Yun., Chaehwan Jeong., Sanjay S.K., Jin Hyeok Kim., Chem. Mater., 10 (2016), 3308.
Uwagi
PL
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2019).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-6313c696-0edd-4daf-9cf2-d729f98e52af
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