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Published in: Journal of Nanoparticle Research 1/2023

01-01-2023 | Research paper

Fabrication, structural, morphological, and optical studies of CdS:Cu nanostructured thin films: effect of Cu concentration

Authors: Atefeh Nazari Setayesh, Sahar Moradi, Hasan Sedghi

Published in: Journal of Nanoparticle Research | Issue 1/2023

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Abstract

Copper-doped cadmium sulfide (CdS:Cu) nanocrystalline thin films were coated on glass substrates with different Cu concentrations (0 wt.%, 3 wt.%, and 6 wt.%) using the sol–gel spin coating technique. X-ray diffraction (XRD) spectrometry, scanning electron microscope (SEM), and energy-dispersive X-ray (EDX) analysis were used to analyze the average crystallite size, surface morphology, and chemical analysis of prepared thin films in 3 and 6 wt.% of Cu concentrations. According to the XRD results and SEM micrographs, nanocrystalline grains of doped thin films have an almost regular geometric shape, which become slightly larger by increasing Cu concentration from 3 to 6 wt.%. The optical and electrical characteristics of all three films were examined by spectroscopy ellipsometry (SE) technique in the wavelength range between 300 and 900 nm. Based on the SE results, the thin film prepared with 0 wt.% Cu concentration showed a higher refractive index, extinction coefficient, and absorbance compared to the other Cu-doped thin films. The CdS:Cu thin films with 3 and 6 wt.% Cu concentrations demonstrated significantly higher transparency than pure ones (0 wt.% Cu doped), making them particularly suitable for different optoelectronic applications. Moreover, the optical band gap energy (Eg) values were evaluated. It can be concluded that the pure film has the largest band gap energy, and Cu doping reduces the Eg values. The spin-coated 6 wt.% CdS:Cu thin film showed high transparency (67.83%), good homogeneity, and a substantial Eg value (2.6 eV), making it ideal for photocatalytic and photovoltaic applications.

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Literature
1.
go back to reference Das NS, Ghosh PK, Mitra MK, Chattopadhyay KK (2010) Effect of film thickness on the energy band gap of nanocrystalline CdS thin films analyzed by spectroscopic ellipsometry. Physica E 42:2097–2102CrossRef Das NS, Ghosh PK, Mitra MK, Chattopadhyay KK (2010) Effect of film thickness on the energy band gap of nanocrystalline CdS thin films analyzed by spectroscopic ellipsometry. Physica E 42:2097–2102CrossRef
2.
go back to reference Munirah, Shahid Khan M, Aziz A, Abdul Rahman S, Raza Khan Z (2013) Spectroscopic studies of sol–gel grown CdS nanocrystalline thin films for optoelectronic devices. Mater Sci Semicond Process 16:1894–1898CrossRef Munirah, Shahid Khan M, Aziz A, Abdul Rahman S, Raza Khan Z (2013) Spectroscopic studies of sol–gel grown CdS nanocrystalline thin films for optoelectronic devices. Mater Sci Semicond Process 16:1894–1898CrossRef
4.
go back to reference Tsao C, Fang M, Hsu Y (2021) Modulation of interfacial charge dynamics of semiconductor heterostructures for advanced photocatalytic applications. Coord Chem Rev 438:213876CrossRef Tsao C, Fang M, Hsu Y (2021) Modulation of interfacial charge dynamics of semiconductor heterostructures for advanced photocatalytic applications. Coord Chem Rev 438:213876CrossRef
5.
go back to reference Kabra K, Chaudhary R, Sawhney RL (2004) Treatment of hazardous organic and inorganic compounds through aqueous-phase photocatalysis: a review. Ind Eng Chem Res 43(24):7683–7696CrossRef Kabra K, Chaudhary R, Sawhney RL (2004) Treatment of hazardous organic and inorganic compounds through aqueous-phase photocatalysis: a review. Ind Eng Chem Res 43(24):7683–7696CrossRef
7.
go back to reference Bora LV, Mewada RK (2017) Visible/solar light active photocatalysts for organic effluent treatment: fundamentals, mechanisms, and parametric review. Renew Suitable Energy Rev 76:1393–1421CrossRef Bora LV, Mewada RK (2017) Visible/solar light active photocatalysts for organic effluent treatment: fundamentals, mechanisms, and parametric review. Renew Suitable Energy Rev 76:1393–1421CrossRef
8.
go back to reference Jyothi MS, Nayak V, Reddy KR, Naveen S, Raghu AV (2019) Chapter 3, Non-metal (Oxygen, Sulphur, Nitrogen, Boron and Phosphorus)-Doped metal oxide hybrid nanostructures as highly efficient photocatalysts for water treatment and hydrogen generation. American Jewish Year Book 2018. Springer, Cham, pp 83–105. https://doi.org/10.1007/978-3-030-10609-6_3 Jyothi MS, Nayak V, Reddy KR, Naveen S, Raghu AV (2019) Chapter 3, Non-metal (Oxygen, Sulphur, Nitrogen, Boron and Phosphorus)-Doped metal oxide hybrid nanostructures as highly efficient photocatalysts for water treatment and hydrogen generation. American Jewish Year Book 2018. Springer, Cham, pp 83–105. https://​doi.​org/​10.​1007/​978-3-030-10609-6_​3
9.
go back to reference Cheng L, Xiang Q, Liao Y, Zhang H (2018) CdS-based photocatalysts. Energy Environ Sci 11(6):1362–1391CrossRef Cheng L, Xiang Q, Liao Y, Zhang H (2018) CdS-based photocatalysts. Energy Environ Sci 11(6):1362–1391CrossRef
10.
go back to reference Zhou R, Yang Z, Xu J, Cao G (2018) Synergistic combination of semiconductor quantum dots and organic-inorganic halide perovskites for hybrid solar cells. Coord Chem Rev 374:279–313CrossRef Zhou R, Yang Z, Xu J, Cao G (2018) Synergistic combination of semiconductor quantum dots and organic-inorganic halide perovskites for hybrid solar cells. Coord Chem Rev 374:279–313CrossRef
11.
go back to reference Hyun BR, Zhong YW, Bartnik AC, Sun L, Abruna HD, Wise FW, Goodreau JD, Matthews JR, Leslie TM, Borrelli NF (2008) Electron injection from colloidal PbS quantum dots into titanium dioxide nanoparticles. ACS Nano 2(11):2206–2212CrossRef Hyun BR, Zhong YW, Bartnik AC, Sun L, Abruna HD, Wise FW, Goodreau JD, Matthews JR, Leslie TM, Borrelli NF (2008) Electron injection from colloidal PbS quantum dots into titanium dioxide nanoparticles. ACS Nano 2(11):2206–2212CrossRef
12.
go back to reference Ali N, Hussain A, Ahmed R, Wang MK, Zhao C, Haq BU, Fu YQ (2016) Advances in nanostructured thin film materials for solar cell applications. Renew Energy Rev 59:726–737CrossRef Ali N, Hussain A, Ahmed R, Wang MK, Zhao C, Haq BU, Fu YQ (2016) Advances in nanostructured thin film materials for solar cell applications. Renew Energy Rev 59:726–737CrossRef
13.
go back to reference Chtouki T, El Kouari Y, Kulyk B, Louardi A, Rmili A, Erguig H, Elidrissi B, Soumahoro L, Sahraoui B (2017) Spin-coated nickel doped cadmium sulfide thin films for third harmonic generation applications. J Alloy Compd 696:1292–1297CrossRef Chtouki T, El Kouari Y, Kulyk B, Louardi A, Rmili A, Erguig H, Elidrissi B, Soumahoro L, Sahraoui B (2017) Spin-coated nickel doped cadmium sulfide thin films for third harmonic generation applications. J Alloy Compd 696:1292–1297CrossRef
14.
go back to reference Oliva AI, Corona JE, Patiño R, Oliva-Avilés AI (2014) Chemical bath deposition of CdS thin films doped with Zn and Cu. Bull. Mater Sci 37:247–255CrossRef Oliva AI, Corona JE, Patiño R, Oliva-Avilés AI (2014) Chemical bath deposition of CdS thin films doped with Zn and Cu. Bull. Mater Sci 37:247–255CrossRef
15.
go back to reference SonawaneShivaji M (2018) Characterization of CdS thin film grown by chemical bath deposition, Int. Res J Sci Eng A 2:221–224 SonawaneShivaji M (2018) Characterization of CdS thin film grown by chemical bath deposition, Int. Res J Sci Eng A 2:221–224
16.
go back to reference Heiba ZK, Mohamed MB, Imam NG (2015) Biphasic quantum dots of cubic and hexagonal Mn doped CdS, necessity of Rietveld analysis. J Alloys Compd 618:280–286CrossRef Heiba ZK, Mohamed MB, Imam NG (2015) Biphasic quantum dots of cubic and hexagonal Mn doped CdS, necessity of Rietveld analysis. J Alloys Compd 618:280–286CrossRef
17.
go back to reference Kumar N, Pathak TK, Purohit LP, Swart HC, Goswami YC (2018) Self-assembled Cu doped CdS nanostructures on flexible cellulose acetate substrates using low-cost sol-gel route. Nano-structures & Nano-objects 16:1–8CrossRef Kumar N, Pathak TK, Purohit LP, Swart HC, Goswami YC (2018) Self-assembled Cu doped CdS nanostructures on flexible cellulose acetate substrates using low-cost sol-gel route. Nano-structures & Nano-objects 16:1–8CrossRef
19.
go back to reference AbdolahzadehZiabari A, Ghodsi FE (2012) Growth, characterization and studying of sol-gel–derived CdS nanoscrystalline thin films incorporated in polyethyleneglycol: effects of post-heat treatment. Sol Energy Mater Solar Cells 105:249–262CrossRef AbdolahzadehZiabari A, Ghodsi FE (2012) Growth, characterization and studying of sol-gel–derived CdS nanoscrystalline thin films incorporated in polyethyleneglycol: effects of post-heat treatment. Sol Energy Mater Solar Cells 105:249–262CrossRef
20.
go back to reference AbdolahzadehZiabari A, Ghodsi FE (2013) Influence of Cu doping and post heat treatment on the microstructure, optical properties and photoluminescence features of sol-gel–derived nanostructured CdS thin films. J Lumin 141:121–129CrossRef AbdolahzadehZiabari A, Ghodsi FE (2013) Influence of Cu doping and post heat treatment on the microstructure, optical properties and photoluminescence features of sol-gel–derived nanostructured CdS thin films. J Lumin 141:121–129CrossRef
21.
go back to reference ShahidKhan MM, Aziz A, Rahman SA, RazaKhan Z (2013) Spectroscopic studies of sol-gel–grown CdS nanocrystalline thin films for optoelectronic devices. Mater Sci Semicond Process 16:1894–1898CrossRef ShahidKhan MM, Aziz A, Rahman SA, RazaKhan Z (2013) Spectroscopic studies of sol-gel–grown CdS nanocrystalline thin films for optoelectronic devices. Mater Sci Semicond Process 16:1894–1898CrossRef
22.
go back to reference Al-Jawad SMH (2017) Comparative study between CBD and SILAR methods for deposited TiO2, CdS, and TiO2/CdS core-shell structure. Mater Sci Semicond Process 67:75–83CrossRef Al-Jawad SMH (2017) Comparative study between CBD and SILAR methods for deposited TiO2, CdS, and TiO2/CdS core-shell structure. Mater Sci Semicond Process 67:75–83CrossRef
23.
go back to reference Guo Y, Jiang J, Zuo S, Shi F, Tao J, Hu Z, Hu X, Hu G, Yang P, Chu J (2018) RF-sputtered CdS films as independent or buffered electron transport layer for efficient planar perovskite solar cell. Sol Energy Mater Sol Cells 178:186–192CrossRef Guo Y, Jiang J, Zuo S, Shi F, Tao J, Hu Z, Hu X, Hu G, Yang P, Chu J (2018) RF-sputtered CdS films as independent or buffered electron transport layer for efficient planar perovskite solar cell. Sol Energy Mater Sol Cells 178:186–192CrossRef
24.
go back to reference Nobari N, Behboudnia M, Maleki R (2017) Systematics in morphological, structural and optoelectrical properties of nanocrystalline CdS thin films grown by electrodeposition method. Mater Sci Eng, B 224:181–189CrossRef Nobari N, Behboudnia M, Maleki R (2017) Systematics in morphological, structural and optoelectrical properties of nanocrystalline CdS thin films grown by electrodeposition method. Mater Sci Eng, B 224:181–189CrossRef
25.
go back to reference Barreca D, Gasparotto A, Maragno C, Tondello E (2004) J Electrochem Soc 151:428–435CrossRef Barreca D, Gasparotto A, Maragno C, Tondello E (2004) J Electrochem Soc 151:428–435CrossRef
26.
go back to reference Liu B, Luo R, Li B, Zhang J, Li W, Wu L, Feng L, Wu J (2016) J Alloys Compd 654:333–339CrossRef Liu B, Luo R, Li B, Zhang J, Li W, Wu L, Feng L, Wu J (2016) J Alloys Compd 654:333–339CrossRef
27.
go back to reference Shaban M, Mustafa M, El Sayed AM (2016) Structural, optical, and photocatalytic properties of the spray-deposited nanoporous CdS thin films, influence of copper doping, annealing, and deposition parameters. Mater Sci Semicond Process 56:329–343CrossRef Shaban M, Mustafa M, El Sayed AM (2016) Structural, optical, and photocatalytic properties of the spray-deposited nanoporous CdS thin films, influence of copper doping, annealing, and deposition parameters. Mater Sci Semicond Process 56:329–343CrossRef
28.
go back to reference Sandoval-Paz MG, Ramírez-Bon R (2009) Analysis of the early growth mechanisms during the chemical deposition of CdS thin films by spectroscopic ellipsometry. Thin Solid Films 517:6747–6752CrossRef Sandoval-Paz MG, Ramírez-Bon R (2009) Analysis of the early growth mechanisms during the chemical deposition of CdS thin films by spectroscopic ellipsometry. Thin Solid Films 517:6747–6752CrossRef
29.
go back to reference Rmili A, Ouachtari F, Bouaoud A, Louardi A, Chtouki T, Elidrissi B, Erguig H (2013) Structural, optical and electrical properties of Ni-doped CdS thin films prepared by spray pyrolysis. J Alloy Compd 557:53–59CrossRef Rmili A, Ouachtari F, Bouaoud A, Louardi A, Chtouki T, Elidrissi B, Erguig H (2013) Structural, optical and electrical properties of Ni-doped CdS thin films prepared by spray pyrolysis. J Alloy Compd 557:53–59CrossRef
30.
go back to reference Fricke L, Bontgen T, Lorbeer J, Bundesmann C, Grund RS, Grundmann M (2014) An extended Drude model for the in-situ spectroscopic ellipsometry analysis of ZnO thin layers and surface modifications. Thin Solid Films 571:437–441CrossRef Fricke L, Bontgen T, Lorbeer J, Bundesmann C, Grund RS, Grundmann M (2014) An extended Drude model for the in-situ spectroscopic ellipsometry analysis of ZnO thin layers and surface modifications. Thin Solid Films 571:437–441CrossRef
31.
go back to reference Galvan AM, Cruz CT, Lee J, Bhattacharyya D, Metson J, Evans PJ, Pal U (2006) Effect of metal-ion doping on the optical properties of nanocrystalline ZnO thin films. J Appl Phys 99:014306CrossRef Galvan AM, Cruz CT, Lee J, Bhattacharyya D, Metson J, Evans PJ, Pal U (2006) Effect of metal-ion doping on the optical properties of nanocrystalline ZnO thin films. J Appl Phys 99:014306CrossRef
33.
go back to reference Fujiwara H (2007) Spectroscopic ellipsometry principles and applications. John Wiley & Sons, Ltd Fujiwara H (2007) Spectroscopic ellipsometry principles and applications. John Wiley & Sons, Ltd
34.
go back to reference Leng J, Opsal J, Chu H, Senko M, Aspnes DE (1998) Analytic representations of the dielectric functions of materials for device and structural modeling. Thin Solid Films 313–314:132–136CrossRef Leng J, Opsal J, Chu H, Senko M, Aspnes DE (1998) Analytic representations of the dielectric functions of materials for device and structural modeling. Thin Solid Films 313–314:132–136CrossRef
35.
go back to reference Peters S (2009) Spectra ray and application tutorial, spectroscopic ellipsometry-theory and application. Peters S (2009) Spectra ray and application tutorial, spectroscopic ellipsometry-theory and application.
36.
go back to reference NazariSetayesh A, Sedghi H (2021) Sol-gel growth of Ni-doped CdS on glass substrates: effect of spin coating speed and dopant concentration. Nanosci Nanotechnol-Asia 11(2):230–236CrossRef NazariSetayesh A, Sedghi H (2021) Sol-gel growth of Ni-doped CdS on glass substrates: effect of spin coating speed and dopant concentration. Nanosci Nanotechnol-Asia 11(2):230–236CrossRef
37.
go back to reference Aboud AA, Mukherjee A, Revaprasadu N, Nagaty Mohamed A (2019) The effect of Cu-doping on CdS thin films deposited by the spray pyrolysis technique. J Mater Res Technol 8:2021–2030CrossRef Aboud AA, Mukherjee A, Revaprasadu N, Nagaty Mohamed A (2019) The effect of Cu-doping on CdS thin films deposited by the spray pyrolysis technique. J Mater Res Technol 8:2021–2030CrossRef
38.
go back to reference Dakhel AA (2009) Influence of dysprosium doping on the electrical and optical properties of CdO thin films. Sol Energy 83:934–939CrossRef Dakhel AA (2009) Influence of dysprosium doping on the electrical and optical properties of CdO thin films. Sol Energy 83:934–939CrossRef
39.
go back to reference Mustapha S, Ndamitso MM, Abdulkareem AS, Tijani JO, Shuaib D, Mohammed AK, Sumaila A (2019) Comparative study of crystallite size using Williamson-Hall and Debye-Scherrer plots for ZnO nanoparticles. Adv Nat Sci Nanosci Nanotechnol 10(8pp):045013CrossRef Mustapha S, Ndamitso MM, Abdulkareem AS, Tijani JO, Shuaib D, Mohammed AK, Sumaila A (2019) Comparative study of crystallite size using Williamson-Hall and Debye-Scherrer plots for ZnO nanoparticles. Adv Nat Sci Nanosci Nanotechnol 10(8pp):045013CrossRef
40.
go back to reference Nath D, Singh F, Das R (2020) X-ray diffraction analysis by Williamson-Hall, Halder-Wagner, and size-strain plot methods of CdSe nanoparticles—a comparative study. Mater Chem Phys 239:122021CrossRef Nath D, Singh F, Das R (2020) X-ray diffraction analysis by Williamson-Hall, Halder-Wagner, and size-strain plot methods of CdSe nanoparticles—a comparative study. Mater Chem Phys 239:122021CrossRef
41.
go back to reference Sen SK, Barman UC, Manir MS, Mondal P, Dutta S, Paul M, Chowdhury MAM, Hakim MA (2020) X-ray peak profile analysis of pure and Dy-doped α-MoO3 nanobelts using Debye–Scherre, Williamson–Hall and Halder–Wagner methods. Adv Nat Sci: Nanosci Nanotechnol 11(025004):10. https://doi.org/10.1088/2043-6254/ab8732 Sen SK, Barman UC, Manir MS, Mondal P, Dutta S, Paul M, Chowdhury MAM, Hakim MA (2020) X-ray peak profile analysis of pure and Dy-doped α-MoO3 nanobelts using Debye–Scherre, Williamson–Hall and Halder–Wagner methods. Adv Nat Sci: Nanosci Nanotechnol 11(025004):10. https://​doi.​org/​10.​1088/​2043-6254/​ab8732
42.
go back to reference Jonnalagadda M, Prasada VB, Raghu AV (2021) Synthesis of composite nanopowder through Mn doped ZnS-CdS systems and its structural, optical properties. J Mol Struct 1230:129875CrossRef Jonnalagadda M, Prasada VB, Raghu AV (2021) Synthesis of composite nanopowder through Mn doped ZnS-CdS systems and its structural, optical properties. J Mol Struct 1230:129875CrossRef
43.
go back to reference Muthusamy M, Muthukumaran S (2015) Effect of Cu-doping on structural, optical and photoluminescence properties of CdS thin films. Optik-Int J Light Electron Opt 126:5200–5206CrossRef Muthusamy M, Muthukumaran S (2015) Effect of Cu-doping on structural, optical and photoluminescence properties of CdS thin films. Optik-Int J Light Electron Opt 126:5200–5206CrossRef
44.
go back to reference Xie R, Su J, Li M, Guo L (2013) Structural and photoelectrochemical properties of Cu-doped CdS thin films prepared by ultrasonic spray pyrolysis. Int J Photoenergy 620134:7 Xie R, Su J, Li M, Guo L (2013) Structural and photoelectrochemical properties of Cu-doped CdS thin films prepared by ultrasonic spray pyrolysis. Int J Photoenergy 620134:7
46.
go back to reference Singh J (1995) Semiconductor optoelectronics: physics and technology. Mc Graw-Hill, New York Singh J (1995) Semiconductor optoelectronics: physics and technology. Mc Graw-Hill, New York
47.
go back to reference Mott NF, Davis EA (1979) Electronic process in non-crystalline materials. Calendron press, Oxford Mott NF, Davis EA (1979) Electronic process in non-crystalline materials. Calendron press, Oxford
48.
go back to reference Liu F, Lai Y, Liu J, Wang B, Kuang S, Zhang Zh, Li J, Liu Y (2010) Characterization of chemical bath–deposited CdS thin films at different deposition temperature. J Alloy Compd 493:305–308CrossRef Liu F, Lai Y, Liu J, Wang B, Kuang S, Zhang Zh, Li J, Liu Y (2010) Characterization of chemical bath–deposited CdS thin films at different deposition temperature. J Alloy Compd 493:305–308CrossRef
49.
go back to reference Kariper A, Guneri E, Göde F, Gümüs C, Özpozan T (2011) The structural, electrical and optical properties of CdS thin films as a function of pH. Mater Chem Phys 129:183–188CrossRef Kariper A, Guneri E, Göde F, Gümüs C, Özpozan T (2011) The structural, electrical and optical properties of CdS thin films as a function of pH. Mater Chem Phys 129:183–188CrossRef
50.
go back to reference Diaz-Grijalva OI, Berman-Mendoza D, Flores-Pacheco A, López-Delgado R, Ramos-Carrazco A, Alvarez-Ramos ME (2020) Cu-doped CdS thin films by chemical bath deposition and ion exchange. J Mater Sci: Mater Electron 31:1722–1730 Diaz-Grijalva OI, Berman-Mendoza D, Flores-Pacheco A, López-Delgado R, Ramos-Carrazco A, Alvarez-Ramos ME (2020) Cu-doped CdS thin films by chemical bath deposition and ion exchange. J Mater Sci: Mater Electron 31:1722–1730
51.
go back to reference Yılmaz S (2015) The investigation of spray pyrolysis grown CdS thin films doped with fluorine atoms. Appl Surf Sci 357:873–879CrossRef Yılmaz S (2015) The investigation of spray pyrolysis grown CdS thin films doped with fluorine atoms. Appl Surf Sci 357:873–879CrossRef
52.
go back to reference Thirumoorthi M, Thomas Joseph Prakash J (2016) A study of Tin doping effects on physical properties of CdO thin films prepared by sol–gel spin coating method. J Asian Ceram Soc 4:39–45CrossRef Thirumoorthi M, Thomas Joseph Prakash J (2016) A study of Tin doping effects on physical properties of CdO thin films prepared by sol–gel spin coating method. J Asian Ceram Soc 4:39–45CrossRef
Metadata
Title
Fabrication, structural, morphological, and optical studies of CdS:Cu nanostructured thin films: effect of Cu concentration
Authors
Atefeh Nazari Setayesh
Sahar Moradi
Hasan Sedghi
Publication date
01-01-2023
Publisher
Springer Netherlands
Published in
Journal of Nanoparticle Research / Issue 1/2023
Print ISSN: 1388-0764
Electronic ISSN: 1572-896X
DOI
https://doi.org/10.1007/s11051-022-05653-7

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