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Journal articles on the topic 'Cadmium and zinc chalcogenides'

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1

Bouarissa, N., Z. Rouabah, and C. Champion. "Positron Characteristics in Cadmium and Zinc Chalcogenides." Communications in Theoretical Physics 65, no. 5 (2016): 617–21. http://dx.doi.org/10.1088/0253-6102/65/5/617.

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2

Ermolovich, I. B., and V. V. Milenin. "Cation d-shell splitting in zinc and cadmium chalcogenides." Journal of Applied Spectroscopy 47, no. 5 (1987): 1194–97. http://dx.doi.org/10.1007/bf00659824.

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3

Ram, R. K., S. S. Kushwaha, and S. P. Singh. "A new model for the lattice dynamics of Zn–Cd chalcogenides." Canadian Journal of Physics 63, no. 4 (1985): 494–97. http://dx.doi.org/10.1139/p85-078.

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A noncentral second neighbour ionic model is proposed for calculating frequency wave vector dispersion relations for the normal modes of vibrations for zinc and cadmium tellurides crystallizing in the zinc blende structure. The model takes into account the change in energy owing to rotation of bonds. The calculated phonon frequencies show a reasonably satisfactory agreement with the available optic data.
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4

Avetissov, I. Kh, E. N. Mozhevitina, A. V. Khomyakov, R. I. Avetissov, and B. N. Levonovich. "Polymorphous transition wurtzite-sphalerite for nonstoichiometric cadmium and zinc chalcogenides." Doklady Chemistry 440, no. 1 (2011): 244–47. http://dx.doi.org/10.1134/s0012500811090011.

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5

Ezhovskii, Yu K. "Atomic layer deposition of surface nanostructures of cadmium and zinc chalcogenides." Inorganic Materials: Applied Research 6, no. 1 (2015): 73–78. http://dx.doi.org/10.1134/s2075113315010050.

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6

Malik, M. Azad, and Paul O'Brien. "Mixed alkyl zinc or cadmium complexes with dialkyl thio- or selenocarbamates: Precursors for cadmium chalcogenides." Advanced Materials for Optics and Electronics 3, no. 1-6 (1994): 171–75. http://dx.doi.org/10.1002/amo.860030124.

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7

Chanturia, V. A., V. V. Morozov, G. P. Dvoichenkova, E. L. Chanturia, and Yu A. Podkamenny. "Modification of Diamond Spectrum Pattern Using Luminophore-Containing Agents with Zinc and Cadmium Chalcogenides." Физико-технические проблемы разработки полезных ископаемых, no. 4 (2022): 85–97. http://dx.doi.org/10.15372/ftprpi20220409.

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8

Chanturia, V. A., V. V. Morozov, G. P. Dvoichenkova, E. L. Chanturia, and Yu A. Podkamenny. "Modification of Diamond Spectrum Pattern Using Luminophore-Containing Agents with Zinc and Cadmium Chalcogenides." Journal of Mining Science 58, no. 4 (2022): 599–609. http://dx.doi.org/10.1134/s1062739122040093.

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9

Hausmann, A., and R. Roll. "EPR investigations ofS-state impurities with large hyperfine interaction in zinc and cadmium chalcogenides." Zeitschrift f�r Physik B Condensed Matter 72, no. 3 (1988): 365–70. http://dx.doi.org/10.1007/bf01312823.

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10

Ouahab, A., L. Boudaoud, N. Boudaoud, et al. "Structural electronic and thermodynamic properties of CdX(X: S, Se, and Te) cadmium chalcogenides compound." Chalcogenide Letters 21, no. 7 (2024): 529–41. http://dx.doi.org/10.15251/cl.2024.217.529.

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The structural and electronic properties of (CdS, CdSe, and CdTe) compounds in rock-salt, zinc-blend, and wurtzite crystal structures were calculated using ab initio calculation. In addition to these properties, the thermodynamic properties were added advantage to clarify their comportment as temperature variation. Under the context of density functional theory DFT, the calculations were carried out using the full potential linearized augmented plane wave FP-LAPW approach. The generalized gradient approximations GGA-PBE established by Perdew-Burke-Ernzerhof and the local density approximation
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11

Wright, P. J., B. Cockayne, P. J. Parbrook, P. E. Oliver, and A. C. Jones. "Control of prereaction in the metalorganic chemical vapour deposition of zinc- and cadmium-based chalcogenides." Journal of Crystal Growth 108, no. 3-4 (1991): 525–33. http://dx.doi.org/10.1016/0022-0248(91)90230-3.

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12

Hannachi, L., and N. Bouarissa. "Band parameters for cadmium and zinc chalcogenide compounds." Physica B: Condensed Matter 404, no. 20 (2009): 3650–54. http://dx.doi.org/10.1016/j.physb.2009.06.046.

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13

Rashed, Shukri, Vishnu Vilas Kutwade, Ketan Prakash Gattu, Ghamdan Mahmood Mohammed Saleh Gubari, and Ramphal Sharma. "Growth and Exploration of Inorganic Semiconductor Electron and Hole Transport Layers for Low-Cost Perovskite Solar Cells." Trends in Sciences 20, no. 10 (2023): 5839. http://dx.doi.org/10.48048/tis.2023.5839.

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The perovskite exhibited outstanding performance and was a promising alternative material for a low-cost, high power conversion efficiency (PCE) solar cell application. To avoid the high-cost organic materials as electron transport layers (ETL) and hole transport layers (HTL) in perovskite solar cells (PSCs), here introduce the inorganic semiconductor nanomaterials ZnS and CuS work as an ETL and HTL, respectively. In this work, we selected chalcogenides such as zinc sulfide (ZnS) and copper sulfide (CuS) as the 2-electron and hole transport layers and utilized them for perovskite solar cell ap
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14

Elahi, Irfan, Syed Muhammad Alay-e-Abbas, Safdar Nazir, et al. "Formation Energetics, Electronic Structure and Ferromagnetic Properties of C-, Si- and Ge-Doped Zinc Blende Cadmium Chalcogenides." Materials Today Communications 25 (December 2020): 101652. http://dx.doi.org/10.1016/j.mtcomm.2020.101652.

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15

SKUMS, V. F., E. P. PAN'KO, and A. A. VECHER. "ChemInform Abstract: Effect of High Pressures on the Electroconductivity of Some Solid Solutions of Cadmium and Zinc Chalcogenides." ChemInform 23, no. 50 (2010): no. http://dx.doi.org/10.1002/chin.199250015.

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16

Kobeleva, Svetlana P. "Determination of stoichiometry deviation in wide-band II–VI semiconductors on the basis of equilibrium vapor phase composition." Modern Electronic Materials 8, no. (2) (2022): 59–64. https://doi.org/10.3897/j.moem.8.2.90174.

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A method has been suggested for determining stoichiometry deviation in cadmium and zinc chalcogenides based on the temperature dependence of the ratio of components partial pressures during evaporation of solid compounds in a limited volume. The new method differs from methods implying the collection of excessive component during evaporation in large volumes. The method includes measuring the partial pressures of vapor phase components during material heating to above 800 K, solving a set of material balance equations and the electric neutrality equation, and calculating the stoichiometry devi
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17

Mirnaya, Tatiana, Galina Yaremchuk, and Alexander Kosheliev. "SYNTHESIS AND OPTICAL PROPERTIES OF MESOMORPHIC GLASSY NANOCOMPOSITES BASED ON CADMIUM CAPRYLATE WITH CdSe / ZnS HETERONANOPARTICLES." Ukrainian Chemistry Journal 85, no. 1 (2019): 13–18. http://dx.doi.org/10.33609/0041-6045.85.1.2019.13-18.

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The paper presents on the synthesis and optical properties of mesomorphic composites, based on a glassy liquid-crystalline caprylate matrix, with CdSе/ZnS hetero-nanoparticles. The synthesis of complex core-shell semiconductor nanoparticles was carried out by fusing together a cadmium caprylate composite with CdSе nanoparticles and zinc caprylate composite with ZnS nanoparticles. The cadmium and zinc chalcogenide nanoparticles have been synthesized in molten cadmium caprylate and zinc caprylate respectively.
 It has been found by optical spectroscopy that the have hetero-nanoparticles a c
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18

Bouroushian, M., and T. Kosanovic. "Photoelectrochemical Measurements on Cathodically Electrodeposited Films of Cadmium and Zinc Chalcogenide Compounds." Materials Science Forum 480-481 (March 2005): 1–12. http://dx.doi.org/10.4028/www.scientific.net/msf.480-481.1.

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A variety of electrochemical and electrical techniques is employed in order to determine useful parameters of the optical behaviour of thin semiconducting films. In particular, this work is intended to the characterization of cathodically electrodeposited binary and ternary cadmium and zinc selenides and tellurides by photoelectrochemical (PEC) tests. Typical solid-state techniques, such as reflection, laser assisted photoreflection, resistivity and Hall effect measurements are used as well. A plain relation between crystal structure/film morphology and PEC behavior is established so long as t
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19

Emin, Saim, Mattia Fanetti, Fatwa F. Abdi, et al. "Photoelectrochemical Properties of Cadmium Chalcogenide-Sensitized Textured Porous Zinc Oxide Plate Electrodes." ACS Applied Materials & Interfaces 5, no. 3 (2013): 1113–21. http://dx.doi.org/10.1021/am3027986.

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20

Kobeleva, S. P. "Determination of stoichiometry deviation in wide-band II-VI semiconductors on the basis of equilibrium vapor phase composition." Izvestiya Vysshikh Uchebnykh Zavedenii. Materialy Elektronnoi Tekhniki = Materials of Electronics Engineering 25, no. 2 (2022): 107–14. http://dx.doi.org/10.17073/1609-3577-2022-2-107-114.

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A method of determining stoichiometry deviation in cadmium and zinc chalcogenides that is based on the temperature dependence of the ratio of components partial pressures during evaporation of solid compounds in a limited volume has been suggested. The new method differs from methods implying the collection of excessive component during evaporation in large volumes. The method includes measuring vapor phase components partial pressures during material heating to above 800 K, solving a set of material balance equations and the electric neutrality equation, and calculating the stoichiometry devi
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21

Kobeleva, Svetlana P. "Determination of stoichiometry deviation in wide-band II–VI semiconductors on the basis of equilibrium vapor phase composition." Modern Electronic Materials 8, no. 2 (2022): 59–64. http://dx.doi.org/10.3897/j.moem.8.2.90174.

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A method has been suggested for determining stoichiometry deviation in cadmium and zinc chalcogenides based on the temperature dependence of the ratio of components partial pressures during evaporation of solid compounds in a limited volume. The new method differs from methods implying the collection of excessive component during evaporation in large volumes. The method includes measuring the partial pressures of vapor phase components during material heating to above 800 K, solving a set of material balance equations and the electric neutrality equation, and calculating the stoichiometry devi
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22

Legin, K. A., A. M. Bolotov, A. V. Legin, and Yu G. Vlasov. "New Sensory Materials Based on Chalcogenide Glasses Containing Zinc, Cadmium, and Manganese Sulfides." Russian Journal of Applied Chemistry 77, no. 5 (2004): 716–20. http://dx.doi.org/10.1023/b:rjac.0000038797.87121.1a.

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23

Rojas-Montoya, Iván D., Alicia Santana-Silva, Verónica García-Montalvo, Miguel-Ángel Muñoz-Hernández, and Margarita Rivera. "N-(Chalcogen)phosphorylated (chalcogen)ureas of zinc and cadmium(ii): SSPs for group 12–16 thin films." New J. Chem. 38, no. 10 (2014): 4702–10. http://dx.doi.org/10.1039/c4nj00482e.

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24

Thung, Yi Tian, Zitong Zhang, Fei Yan, Hilmi Volkan Demir, and Handong Sun. "Narrow electroluminescence in bromide ligand-capped cadmium chalcogenide nanoplatelets." Applied Physics Letters 120, no. 24 (2022): 241105. http://dx.doi.org/10.1063/5.0094798.

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Colloidal zinc blende II–VI semiconductor nanoplatelets (NPLs) demonstrate as a promising class of materials for optoelectronic devices due to their unique excitonic characteristics, narrow emission linewidth, and quantum well-structure. Adopting heterostructures for these nanocrystals allows tuning of their optical features and enhances their photostability, photoluminescence (PL), quantum yield (QY), and color purity for further device integration. Exchanging of carboxylate capping ligands on top and bottom [001] facets of CdSe NPLs with halide ligands is an alternative to achieve the aims o
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25

Chaudhary, Karan, Manoj Trivedi, Dhanraj T. Masram, and Nigam P. Rath. "Transition-metal complexes of group 12 with 1,1′-bis(phosphanyl)ferrocene ligands." Acta Crystallographica Section C Structural Chemistry 77, no. 5 (2021): 240–48. http://dx.doi.org/10.1107/s2053229621004162.

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The syntheses of four new cadmium and zinc complexes with 1,1′-bis(phosphanyl)ferrocene ligands and their phosphine chalcogenide derivatives are reported. The complexes were characterized by elemental analyses and IR, 1H NMR, 31P NMR and electronic absorption spectroscopy. The crystal structures of dichlorido[1-diphenylphosphinoyl-1′-(di-tert-butylphosphanyl)ferrocene-κ2 O,P]cadmium(II), [CdCl2{(C17H14OP)(C13H22P)Fe}] or CdCl2(κ2 P,O-dppOdtbpf) (1), bis[μ-(tert-butyl)(1′-diphenylphosphinoylferrocen-1-yl)phosphinato-κ3 O,O′:O′′]bis[chloridozinc(II)], [Zn2{(C9H13O2P)(C17H14OP)Fe}2Cl2] or [ZnOCl{
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26

Opanasyuk, A. S., D. I. Kurbatov, V. V. Kosyak, S. I. Kshniakina, and S. N. Danilchenko. "Characteristics of structure formation in zinc and cadmium chalcogenide films deposited on nonorienting substrates." Crystallography Reports 57, no. 7 (2012): 927–33. http://dx.doi.org/10.1134/s1063774512070206.

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27

Varma, Madhuri, Suhas Janwadkar, Himani More, and Mrunmayi Churi. "A review on applications of Schiff bases and their comparison in different field." International Journal of Advance and Applied Research 6, no. 25(A) (2025): 31–34. https://doi.org/10.5281/zenodo.15296298.

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<strong>Abstract: </strong> Schiff bases are adaptable organic compounds that are commonly synthesized through the condensation of various amino compounds with aldehydes or ketones, forming imines. These Schiff base ligands are regarded as privileged ligands due to their straightforward synthesis via condensation. They exhibit a wide range of applications in fields such as medicine, pharmaceuticals, coordination chemistry, biological activities, industries, food packaging, dyes, and polymers, and are also utilized as oxygen detectors. Transition metal complexes, such as those containing copper
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28

Sanville, Edward, Andrei Burnin, and Joseph J. BelBruno. "Experimental and Computational Study of Small (n= 1−16) Stoichiometric Zinc and Cadmium Chalcogenide Clusters." Journal of Physical Chemistry A 110, no. 7 (2006): 2378–86. http://dx.doi.org/10.1021/jp056218v.

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29

Lincot, Daniel, Damien Gamet, Alexandre Crossay, et al. "(Invited) Revisiting Electrodeposition of Semiconductors for Photovoltaics : State of the ART and New Attempt for CIGS Flexible Solar CELLS Industrialization." ECS Meeting Abstracts MA2025-01, no. 32 (2025): 1623. https://doi.org/10.1149/ma2025-01321623mtgabs.

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Electrodeposition of semiconductors has been widely investigated, with studies dealing mainly with the electrodeposition of telluride, selenide and sulfide chalcogenides based on zinc, cadmium, copper, indium, gallium indium, gallium both as binary and multinary compounds. Electrodeposition of oxide semiconductors and transparent conducting oxides has also attracted a lot of attention, with the key example of zinc oxide. Electrodeposition of III-V has been less studied, and a few attempts have been carried out for silicon. The presentation will be introduced by a rapid overview of the state of
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30

Ebnou, Fatimetou, Mohamed M'Haiham, Khaled Ebeid, et al. "Synthesis, characterization, and structural properties of mercury(II), cadmium(II) and zinc(II) tripiperidinophosphine chalcogenide complexes." Polyhedron 159 (February 2019): 206–11. http://dx.doi.org/10.1016/j.poly.2018.11.059.

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31

Arbuzova, Svetlana N., Pavel A. Volkov, Nina I. Ivanova, et al. "Synthesis and structural characterization of novel zinc(II) and cadmium(II) complexes with pyridine-phosphine chalcogenide ligands." Journal of Organometallic Chemistry 696, no. 10 (2011): 2053–58. http://dx.doi.org/10.1016/j.jorganchem.2010.10.062.

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32

Neves, Márcia C., Angela S. Pereira, Marco Peres, Andréi L. Kholkin, Teresa Monteiro, and Tito Trindade. "Layer-by-Layer Deposition of Organically Capped Quantum Dots." Materials Science Forum 514-516 (May 2006): 1111–15. http://dx.doi.org/10.4028/www.scientific.net/msf.514-516.1111.

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Cadmium chalcogenide quantum dots (QD’s) were synthesised using a single source approach while zinc oxide QD’s were obtained by a colloidal technique. In both situations the dots were surface capped with tri-octylphosphine oxide (TOPO) hence leading to nanodispersed systems in organic solvents such as toluene. The organically capped QD’s (CdSe, CdS and ZnO) were used as building-units to fabricate LbL (layer-by-layer) films on glass and quartz substrates. A linear increase in the visible light absorbance (due to the QD’s) with the number of deposited layers indicates that multi-layered systems
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33

Okazaki, Ken-ichi, Norihisa Kojima, Yasuhiro Tachibana, Susumu Kuwabata, and Tsukasa Torimoto. "One-step Preparation and Photosensitivity of Size-quantized Cadmium Chalcogenide Nanoparticles Deposited on Porous Zinc Oxide Film Electrodes." Chemistry Letters 36, no. 6 (2007): 712–13. http://dx.doi.org/10.1246/cl.2007.712.

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34

Babu, P. J. S., T. S. Padmanabhan, M. I. Ahamed, and A. Sivaranjani. "Studies on copper indium selenide/Zinc sulphide semiconductor quantum dots for solar cell applications." Chalcogenide Letters 18, no. 11 (2021): 701–15. http://dx.doi.org/10.15251/cl.2021.1811.701.

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Despite dedicated efforts to develop efficient quantum dot sensitized (QDS) photovoltaic cells, the efficiency of these cells still lags behind their theoretical value. In order to increase photo conversion efficiency, the extant methods are predominantly focus on modifying the band gaps of quantum dots and optimizing the interfaces of cell components to increase light utilization capacity. In this study, we have designed and investigated QDS solar cells using Copper Indium Selenide (CuInSe2 or simply CIS) as a quantum dot absorber. In order to achieve tunable bandgap, increased photoluminesce
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35

Danasuriya, U. I., B. C. Liyanapathirana, C. K. M. D. Jayathilaka, R. P. Wijesundera, and W. G. C. Kumarage. "Recent Advancements in Chemical Bath Deposited Pristine CDs Thin Films For Hotovoltaic Applications." Journal of Desk Research Review and Analysis 2, no. 2 (2025): 95–114. https://doi.org/10.4038/jdrra.v2i2.44.

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Cadmium sulfide (CdS) is (II–VI) group n-type semiconductor with appreciable physical and electronic properties. The wide band gap of about 2.42 eV, large absorption coefficient of 4×104 cm−1 and high mobility (440 cm2 V-1 s-1) make it applicable in photovoltaic energy conversion. Consequently, CdS is considered an excellent window material as well as a buffer layer for almost all chalcogenide thin film technologies, including copper zinc tin selenide (CZTSe), copper indium gallium selenide (CIGS) and CdTe-based solar cells. However, the defects present in the CdS thin films, such as inter-gra
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36

Shridharshini Kumar, Praveen Sekar, and Senthil Kumar Raju. "Microwave assisted Schiff base metal complexes as potential anticancer and antimicrobial agents: A critical review." Open Access Research Journal of Science and Technology 7, no. 2 (2023): 001–18. http://dx.doi.org/10.53022/oarjst.2023.7.2.0016.

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Schiff bases are organic compounds which contain azomethine group (-C=N-) by reacting primary amines and carbonyl compounds. The presence of an azomethine group in the Schiff base facilitates coordination with transition metal ions. The term Schiff base is normally applied to these compounds when they are being used as ligands to form coordination complexes with metal ions. Such complexes occur naturally, but the majority of Schiff bases are artificial and are used to form many important catalysts. Schiff base metal complexes prepared using microwave irradiation have gained more attention beca
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37

Pickett, Nigel L., Steven Lawson, W. Gregor Thomas, et al. "Gas-phase formation of zinc/cadmium chalcogenide cluster complexes and their solid-state thermal decomposition to form II-VI nanoparticulate material." Journal of Materials Chemistry 8, no. 12 (1998): 2769–76. http://dx.doi.org/10.1039/a806421k.

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38

Gautam, Nitendra Kumar, Meera Ramrakhiani, R. K. Kuraria, and S. R. Kuraria. "Electroluminescence in Organically Capped Cd1-xZnxSe Chalcogenide Nanocrystals." Defect and Diffusion Forum 361 (January 2015): 215–30. http://dx.doi.org/10.4028/www.scientific.net/ddf.361.215.

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Currently there is a great interest in II–VI semiconductor nanoparticles, particularly organically capped soluble particles of cadmium or zinc sulphide and selenide, for their ready to use application in devices. For electroluminescence (EL) devices, it is expected to cover a broad spectrum and to tune various specific colours by preparing Cd1-xZnx Se instead of CdSe and ZnSe. Ternary alloys have composition dependent properties; therefore Cd1-xZnxSe has attracted much attention in the fields of luminescence and optoelectronic devices. It has wide optical band-gap and good stability with respe
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39

Riddle, Jacqueline, Julia Bayne, and Ian Butler. "Cadmium(II) Chalcogenides Stable across Wide Temperature Range." McGill Science Undergraduate Research Journal 10, no. 1 (2015): 11–13. http://dx.doi.org/10.26443/msurj.v10i1.115.

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&#x0D; &#x0D; &#x0D; &#x0D; Background: The three cadmium(II) chalcogenides CdX (X = S, Se, Te; Cadmium with either Sulphur, Se- lenium, or Tellurium), have important applications as artists’ pigments and in the electronics industry. The purpose of this study is to assess the structural stabilities of bulk, microcrystalline samples of the three cadmium(II) chalcogenides over a wide temperature range by examining the changes that occur in their Raman spectra.&#x0D; &#x0D; &#x0D; &#x0D; &#x0D; Methods: We recorded the Raman spectra of the three cadmium(II) chalcogenides from -196 °C to 500 °C on
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40

Jin, Bao, and Tianyou Zhai. "2D Cadmium Chalcogenides for Optoelectronics." Chemical Research in Chinese Universities 36, no. 4 (2020): 493–503. http://dx.doi.org/10.1007/s40242-020-0221-8.

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41

Løver, Thomas, William Henderson, Graham A. Bowmaker, John M. Seakins, and Ralph P. Cooney. "Electrospray Mass Spectrometry of Thiophenolate-Capped Clusters of CdS, CdSe, and ZnS and of Cadmium and Zinc Thiophenolate Complexes: Observation of Fragmentation and Metal, Chalcogenide, and Ligand Exchange Processes." Inorganic Chemistry 36, no. 17 (1997): 3711–23. http://dx.doi.org/10.1021/ic970203x.

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42

Janetzko, Florian, and Karl Jug. "Miscibility of Zinc Chalcogenides." Journal of Physical Chemistry A 108, no. 25 (2004): 5449–53. http://dx.doi.org/10.1021/jp040061+.

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43

Jug, Karl, and Viatcheslav A. Tikhomirov. "Anion substitution in zinc chalcogenides." Journal of Computational Chemistry 27, no. 10 (2006): 1088–92. http://dx.doi.org/10.1002/jcc.20415.

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44

Ding, Yang, Jie Liu, Yan Zhu, et al. "Free inert gas protection, low temperature, non-injection synthesis of CdS and doped quantum dots for efficient white light-emitting diodes." Journal of Materials Chemistry C 5, no. 13 (2017): 3276–82. http://dx.doi.org/10.1039/c7tc00207f.

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45

Kumar, Sachin, Naven Kumar, Kamna Yadav, and R. P. Singh. "DFT study of optoelectronic spectra of barium cadmium chalcogenides (Ba2CdX3, X = S, Se and Te)." Materials Science-Poland 37, no. 3 (2019): 417–25. http://dx.doi.org/10.2478/msp-2019-0045.

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AbstractDFT analyses of electronic and optical spectra of barium cadmium chalcogenides (Ba2CdX3, X = S, Se, Te) have been carried out. The study of electronic spectra has been made in terms of band structure and density of states using full potential linear augmented plane wave plus local orbital method. Band structure calculations have been carried out under the approximations PBE-GGA, PBE-Sol, LDA and TB-mBJ. Band structures of these materials show that Ba2CdS3, Ba2CdSe3 and Ba2CdTe3 crystals possess a band gap less than 1 eV, underestimated relative to the experimental/theoretical literatur
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46

Ezhovskii, Yu K. "Atomic-layer deposition of cadmium chalcogenides on silicon." Russian Journal of Physical Chemistry A 88, no. 9 (2014): 1580–84. http://dx.doi.org/10.1134/s0036024414090143.

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47

Loscutova, Ryan, and Andrew R. Barron. "Coating single-walled carbon nanotubes with cadmium chalcogenides." Journal of Materials Chemistry 15, no. 40 (2005): 4346. http://dx.doi.org/10.1039/b510255c.

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48

Gabrel'yan, B. V., A. A. Lavrent'ev, and I. Ya Nikiforov. "Electronic structure of semiconductor solutions of cadmium chalcogenides." Physics of the Solid State 41, no. 1 (1999): 35–36. http://dx.doi.org/10.1134/1.1130724.

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49

Li, Zhenwei, Hongbo Wang, Yan Li, Yanming Ma, Tian Cui, and Guangtian Zou. "Pressure-induced elemental dissociation in zinc chalcogenides." New Journal of Physics 12, no. 4 (2010): 043058. http://dx.doi.org/10.1088/1367-2630/12/4/043058.

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50

Sun, Hai-Qing, Wen-Tao Yu, Duo-Rong Yuan, Xin-Qiang Wang, and Li-Qiang Liu. "Zinc cadmium selenocyanate." Acta Crystallographica Section E Structure Reports Online 62, no. 4 (2006): i88—i90. http://dx.doi.org/10.1107/s1600536806008610.

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Abstract:
The crystal structure of a new bimetallic selenocyanate, zinc cadmium selenocyanate or poly[tetra-μ2-selenocyanato-cadmium(II)zinc(II)], [ZnCd(SeCN)4] n , is an infinite three-dimensional network in which the slightly distorted CdSe4 and ZnN4 tetrahedra are connected by –SeCN– bridges. The whole structure can be viewed as a diamondoid network with Cd and Zn nodes and –SeCN– spacers.
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