Academic literature on the topic 'CdS film'

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Journal articles on the topic "CdS film"

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Nway, Han Myat Thin, and Kaung Pho. "Characterization of CdS/Cd1-xZnxTe Films." Dagon University Research Journal Vol.3, no. 2011 (2019): Pg.115–125. https://doi.org/10.5281/zenodo.3542347.

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A method of forming a compound film can be fabricated by using the cadmium sulphide (CdS) compound and cadmium zinc telluride (Cd1-xZnxTe) compounds with the ways of coating the pastes on the glass substrates and sintering the films in a suitable atmosphere. The structural properties of (CdS and Cd1-xZnxTe) compound powders were analyzed by X-ray diffraction (XRD) analysis. The electrical properties of the films were investigated by photoconductivity measurement. The n-CdS/p-Cd1-xZnxTe heterojunction solar cells were fabricated on glass substrates by screen printing method and by sintering met
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Sun, Sheng Nan, Shi Liu, Feng Xu, et al. "Preparation and Characterization of CdS by Evaporation and Cu2S Complex Photoelectric Thin Films." Advanced Materials Research 479-481 (February 2012): 133–36. http://dx.doi.org/10.4028/www.scientific.net/amr.479-481.133.

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Cadmium sulfide (CdS) film by evaporation deposition and CdS/Cuprous sulfide (Cu2S) complex film by dipping were obtained on glass substrates. The influence of different annealing temperatures was investigated. Scanning electron microscopy (SEM) demonstrates CdS films are continuous, homogeneous. X-ray diffraction (XRD), photoluminescence (PL) and Raman spectra reveal the CdS films were hexagonal structure and 400°C is favor of the crystallization and aggregation. The conductivity of CdS/Cu2S complex film is better than that of CdS film.
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Kannan, K., B. Manjunatha, T. Marimuthu, and P. Sangeetha. "Performance analysis of CdS-based thin films in photovoltaic applications." Chalcogenide Letters 22, no. 2 (2025): 167–75. https://doi.org/10.15251/cl.2025.222.167.

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Cadmium sulfide (CdS) thin films are extensively utilized as a window layer in photovoltaic (PV) devices due to their high transmittance, suitable bandgap, and favorable electrical properties. This work presents a comprehensive performance analysis of CdS based thin films in PV applications, examining key factors such as optical, electrical, and structural properties. The bandgap (approximately 2.42 eV) allows effective photon transmission, reducing energy losses. Critical performance metrics, including film thickness, grain size, crystallinity, and interface quality with the absorber layer, a
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Thangarajan, Sarveswaran, Gopinathan Chellachamy, Saravanakumar Kulendran, Pandi Pitchai, and Mahalakshmi Kandasamy. "Synthesis and Study of CdS Thin Films Prepared with Different KMnO4 Activation Time." Journal of Materials 2016 (August 30, 2016): 1–7. http://dx.doi.org/10.1155/2016/3439827.

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The growth and properties of cadmium sulfide (CdS) thin films were prepared in a controlled manner using chemical bath deposition (CBD) method for different KMnO4 activation time such as 5 min, 10 min, 15 min, 20 min, 25 min, and 30 min on glass substrates. CdS thin films are deposited on KMnO4 activated glass substrates at 85°C with pH value of 10 for 30 min deposition time. In the chemical bath deposition (CBD) technique, KMnO4 activation time plays an important role in the growth of the CdS film. The structure of the CdS film changes with respect to the rate of deposition. The size of the p
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Trevizo, Kimberly, Luis Santana, Manuel Chairez, Amanda Carrillo, and Rafael Gonzalez-Landaeta. "Energy Harvesting from Ankle Flexion During Gait Using Flexible CdS and PVDF Sensors." Micromachines 16, no. 6 (2025): 698. https://doi.org/10.3390/mi16060698.

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In this work, energy was harvested from ankle flexion during gait. For this, two piezoelectric thin films were tested: PVDF and CdS. The PVDF film was a commercial option, and the CdS film was fabricated in our laboratory. Deposition of the CdS film is also reported in this work. Energy harvested during gait from heel strike and ankle flexion was compared. Tests were performed with 10 healthy volunteers walking on a treadmill at 1.2–1.5 km/h. The volunteers wore a sock with piezoelectric films incorporated in the heel and ankle joint (talocrural joint). Tests were performed first with the PVDF
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Wong, King Leung, Hung En Chen, and Wen Lih Chen. "Study on the Buffer Layer of CIS Thin Film Solar Cell by Separate-Melting Chemical Bath Deposition Methods." Advanced Materials Research 512-515 (May 2012): 178–81. http://dx.doi.org/10.4028/www.scientific.net/amr.512-515.178.

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In this work, cadmium sulphide (CdS) buffer layer of CuInSe2 (CIS) thin film solar cell is fabricated by separate-melting Chemical Bath Deposition (CBD) methods. The reason of adopting the CdS thin film as the buffer layer of CIS thin film solar cell is that the CdS can act as energy gap buffer and reduce the band-offset between CIS absorbing layer and the Transparent Conductive Oxide layer. The CdS thin films are generated by the separate-melting CBD methods in situation of atmosphere. In order to analyze the characteristics of the CdS thin films conveniently, the CdS thin films are firstly f
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Dang, Hongmei, Esther Ososanya, and Nian Zhang. "Comparison of electrical characteristics of Schottky junctions based on CdS nanowires and thin film." Nanotechnology 33, no. 21 (2022): 215707. http://dx.doi.org/10.1088/1361-6528/ac51eb.

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Abstract CdS nanowires and film Schottky diodes are fabricated and diode properties are compared. Effect of SnO2 on CdS film diode properties is investigated. CdS film/Au on 100 nm SnO2 substrate demonstrates like-resistor characteristics and increase in SnO2 thickness corrects resistor behavior, however the effective reverse saturation current density J o is significantly high and shunt resistance are considerably low, implying that SnO2 slightly prevents impurities migration from CdS films into ITO but cause additional issues. Thickness of CdS film on diode properties is further investigated
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Chien, Dang Tran, Pham Duy Long, Pham Van Hoi, and Le Ha Chi. "Nanocomposite Thin Film TiO2/CdS Electrodes Prepared by Thermal Evaporation Process for Photovoltaic Applications." Communications in Physics 21, no. 1 (2011): 57. http://dx.doi.org/10.15625/0868-3166/21/1/95.

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The incorporation of cadmium sulfide (CdS) into TiO2 nanoparticle thin films was investigated. The nanoparticle TiO2 thin film onto an indium doped–tin oxide (ITO) substrate was deposited by Electron Beam Deposition (EBD) combined with thermal process. Then a CdS thin film was vacuum-deposited onto the pre-deposited TiO2 film by a thermal evaporation technique. The obtained TiO2/CdS was characterized by X-ray diffraction (XRD), field emission scanning electron microscope (FE-SEM). The TiO2/CdS nanocomposite film was used in a photo-electrochemical (PEC) cell as a working electrode and a platin
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Liang, Guang Xing, Ping Fan, Peng Ju Cao, and Zhuang Hao Zheng. "Ion-Beam Sputtering Deposited Cu-Doped CdS Thin Film." Materials Science Forum 743-744 (January 2013): 915–19. http://dx.doi.org/10.4028/www.scientific.net/msf.743-744.915.

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Cu-doped CdS thin film has been successfully deposited by ion-beam sputtering deposition. The structural, morphology, optical and electrical properties of as-deposited and annealed Cu-doped CdS thin films were investigated. The heavily Cu-doped CdS films annealed at 400 °C was demonstrated to be improved in structural, morphology, electrical and optical properties. X-ray diffraction (XRD) analysis indicated the formation of polycrystalline CdS film with the structure of hexagonal wurtzite phase. No distinct impurity of Cu and Cu-S phase was detected in Cu-doped CdS thin films. Atomic force mic
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Melchor-Robles, J. A., K. E. Nieto-Zepeda, N. E. Vázquez-Barragán, et al. "Characterization of CdS/CdTe Ultrathin-Film Solar Cells with Different CdS Thin-Film Thicknesses Obtained by RF Sputtering." Coatings 14, no. 4 (2024): 452. http://dx.doi.org/10.3390/coatings14040452.

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The development of semitransparent CdS/CdTe ultrathin solar cells has been delayed as a result of the activation annealing to which the device must be subjected, which may involve problems such as the sublimation of ultrathin films and the diffusion of Cd and S at the interface. In this work, CdS/CdTe ultrathin devices on soda-lime glass/SnO2:F/ZnO substrates were obtained by RF magnetron sputtering. CdS/CdTe ultrathin heterostructures were obtained with the following thicknesses for the CdS thin film: 70, 110, and 135 nm. The CdTe thickness film was kept constant at 620 nm. Subsequently, acti
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Dissertations / Theses on the topic "CdS film"

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Tetali, Bhaskar Reddy. "Stability studies of CdTe/CdS thin film solar cells." [Tampa, Fla.] : University of South Florida, 2005. http://purl.fcla.edu/fcla/etd/SFE0001135.

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Al-Dhafiri, Abdullah M. "CdS-CuₓS single crystal and thin film solar cells". Thesis, Durham University, 1988. http://etheses.dur.ac.uk/6617/.

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The work presented in this thesis is concerned with photovoltaic cells formed by plating CdS single crystals and thin films, and Cd(_y) Zn(1 _ y)S single crystals, with copper sulphide. An electroplating technique has been used to control the phase of copper sulphide by changing the electric field during its formation. Different phases of Cu(_x)S have been identified directly using Reflection High Energy Diffraction (RHEED), and indirectly from spectral response measurements. A dramatic change in the spectral response accompanying the reduction in the covellite response associated with an incr
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Palekis, Vasilios. "CdTe/CdS Thin Film Solar Cells Fabricated on Flexible Substrates." Scholar Commons, 2011. http://scholarcommons.usf.edu/etd/3280.

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Cadmium Telluride (CdTe) is a leading thin film photovoltaic (PV) material due to its near ideal bandgap of 1.45 eV and its high optical absorption coefficient. The typical CdTe thin film solar cell is of the superstrate configuration where a window layer (CdS), the absorber (CdTe) and a back contact are deposited onto glass coated with a transparent electrode. Substrate CdTe solar cells where the above listed films are deposited in reverse are not common. In this study substrate CdTe solar cells are fabricated on flexible foils. The properties of the Molybdenum back contact, Zinc Telluride (Z
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Korkmaz, Sibel. "Characterization Of Cds Thin Films And Schottky Barrier Diodes." Master's thesis, METU, 2005. http://etd.lib.metu.edu.tr/upload/12606623/index.pdf.

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CdS thin films were deposited by thermal evaporation method onto glass substrates without any doping. As a result of the structural and electrical investigation it was found that CdS thin films were of the polycrystalline structure and n-type<br>and of the transmission analysis optical band gap was found to be around 2.4 eV. Temperature dependent conductivity measurements were carried out in the range of 180 K &ndash<br>400 K. The dominant conduction mechanism is identified as tunnelling between 180 K &ndash<br>230 K and thermionic emission between 270 K and 400 K. To produce Schottky devices,
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Bapanapalli, Srilatha. "Cds/cdte thin film solar cells with zinc stannate buffer layer." [Tampa, Fla.] : University of South Florida, 2005. http://purl.fcla.edu/fcla/etd/SFE0001004.

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Muthuswamy, Gokul. "Numerical modeling of CdS/CdTe thin film solar cell using MEDICI." [Tampa, Fla.] : University of South Florida, 2005. http://purl.fcla.edu/fcla/etd/SFE0001360.

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Hariri, Abdul Kader. "Structural and electrical characteristics of CdS-Cu2S thin film solar cells." Thesis, University of Hull, 1985. http://hydra.hull.ac.uk/resources/hull:4707.

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A study has been made of a variety of factors influencing the efficiency and operational stability of front-wall CdS-Cu2S solar cells. In the course of this work -1 cm2 cells were fabricated with conversion efficiency of up to 8% without attempting to reduce reflection losses.The CdS films were produced by vacuum evaporation and the electrical and structural characteristics of these films were studied as a function of the rate and temperature of the deposition. Previously there had been some controversy concerning the nature of the CdS source material required for fabricating high performance
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Іващенко, Максим Миколайович, Максим Николаевич Иващенко, Maksym Mykolaiovych Ivashchenko, et al. "Design and Fabrication Heterojunction Solarcell of Si-CdS-ZnO Thin Film." Thesis, Sumy State University, 2012. http://essuir.sumdu.edu.ua/handle/123456789/35487.

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Cadmium sulphide (CdS) is a prominent candidate to be used a buffer layer in Si based solar cell. In this study, absorber layer parameters thickness have been investigated by (SCAPS) to find out the higher conversion. Moreover, it is found that Jsc,Voc, η is increased for the absorber layer thickness of 500-600 nm and quantum efficiency is nearly overlap after the 600 nm thickness of the Si absorber layer. In addition, it is revealed that the highest efficiency cell can be achieved with the absorber layer thickness of 600 nm. From the simulation results, numerous influences of absorber la
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Attygalle, Muthuthanthrige Lilani Chandrawansha. "Theoretical modeling of polycrystalline thin-film photovoltaics." University of Toledo / OhioLINK, 2008. http://rave.ohiolink.edu/etdc/view?acc_num=toledo1204144362.

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Yilmaz, Koray. "Investigation Of Inse Thin Film Based Devices." Phd thesis, METU, 2004. http://etd.lib.metu.edu.tr/upload/3/12605431/index.pdf.

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In this study, InSe and CdS thin films were deposited by thermal evaporation method onto glass substrates. Schottky and heterojunction devices were fabricated by deposition of InSe and CdS thin films onto SnO2 coated glass substrates with various top metal contacts such as Ag, Au, In, Al and C. The structural, electrical and optical properties of the films were investigated prior to characterization of the fabricated devices. The structural properties of the deposited InSe and CdS thin films were examined through SEM and EDXA analysis. XRD and electrical measurements have indicated that undop
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Books on the topic "CdS film"

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Gessert, Timothy A. Junction evolution during fabrication of CdS/CdTe thin-film PV solar cells. National Renewable Energy Laboratory, 2010.

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Sandwisch, D. W. High-throughput manufacturing of thin-film CdS/CdTe photovoltaic modules: Annual subcontract report 16 September 1996 - 15 January 1998. National Renewable Energy Laboratory, 1998.

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Service, Chemical Abstracts, ed. Using CAS online: The CA file. Chemical Abstracts Service, 1985.

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Adelstein, Peter Z. IPI media storage quick reference: Negatives, prints, tapes, CDs & DVDs. Image Permanence Institute, 2004.

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Great Britain. Medical Devices Directorate., ed. Evaluation of the Papitech automatic film processor model M45-CDC. Department of Health, Medical DevicesDirectorate, 1991.

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Nanayakkara, R. The CDM regulations health and safety file. Building Services Research and Information Association, 1997.

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Duenow, Joel N. CdS/CdTe solar cells containing directly deposited CdSxTe1-x alloy layers: Preprint. National Renewable Energy Laboratory, 2011.

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Haramundanis, Katherine. Exploring workstation applications with CDE and Motif. Digital Press, 1996.

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Vatavaran (Film Festival) (3rd 2005 New Delhi, India). Vatavaran 2005: Environment & wildlife film festival, 21-24 Nov. 2005, India Habitat Centre, New Delhi. Centre for Media Studies, 2005.

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N, Mione Antonino. CDE and Motif: A practical primer. Prentice Hall PTR, 1998.

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Book chapters on the topic "CdS film"

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Böer, Karl W. "The CdS/CdTe Solar Cell." In Handbook of the Physics of Thin-Film Solar Cells. Springer Berlin Heidelberg, 2013. http://dx.doi.org/10.1007/978-3-642-36748-9_34.

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Böer, Karl W. "CdS/CdTe Analysis and Modeling." In Handbook of the Physics of Thin-Film Solar Cells. Springer Berlin Heidelberg, 2013. http://dx.doi.org/10.1007/978-3-642-36748-9_35.

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Böer, Karl W. "Commercial Use of CdS/CdTe." In Handbook of the Physics of Thin-Film Solar Cells. Springer Berlin Heidelberg, 2013. http://dx.doi.org/10.1007/978-3-642-36748-9_38.

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Böer, Karl W. "The CdS/CuInSe2 Solar Cell." In Handbook of the Physics of Thin-Film Solar Cells. Springer Berlin Heidelberg, 2013. http://dx.doi.org/10.1007/978-3-642-36748-9_39.

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Böer, Karl W. "Basic Physics Discussion of CdS/CdTe." In Handbook of the Physics of Thin-Film Solar Cells. Springer Berlin Heidelberg, 2013. http://dx.doi.org/10.1007/978-3-642-36748-9_36.

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Böer, Karl W. "The CdS/Cu(InGa)Se2 Solar Cells." In Handbook of the Physics of Thin-Film Solar Cells. Springer Berlin Heidelberg, 2013. http://dx.doi.org/10.1007/978-3-642-36748-9_40.

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Bryant, F. J., C. G. Scott, M. Al-Achkar, and E. Aperathitis. "Stabilizing Processes for Cuxs-Cds Thin Film Solar Cells." In Seventh E.C. Photovoltaic Solar Energy Conference. Springer Netherlands, 1987. http://dx.doi.org/10.1007/978-94-009-3817-5_110.

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Romeo, N., A. Bosio, V. Canevari, and L. Zanotti. "CuInSe2/CdS Thin Film Solar Cells by R.F. Sputtering." In Seventh E.C. Photovoltaic Solar Energy Conference. Springer Netherlands, 1987. http://dx.doi.org/10.1007/978-94-009-3817-5_117.

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Skarp, J., Y. Koskinen, S. Lindfors, A. Rautiainen, and T. Suntola. "Development and Evaluation of Cds/CdTe Thin Film PV Cells." In Tenth E.C. Photovoltaic Solar Energy Conference. Springer Netherlands, 1991. http://dx.doi.org/10.1007/978-94-011-3622-8_144.

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Romeo, N., A. Bosio, and P. Mussini. "CuInSe2/CdS Thin Film Solar Cells by Selenization and Sputtering." In Tenth E.C. Photovoltaic Solar Energy Conference. Springer Netherlands, 1991. http://dx.doi.org/10.1007/978-94-011-3622-8_227.

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Conference papers on the topic "CdS film"

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Chen, Hongming, Xinfan Huang, Hong-Bin Huang, et al. "Preparation and characterization of the quantum dot quantum well system CdS/CuS/CdS." In Third International Conference on Thin Film Physics and Applications, edited by Shixun Zhou, Yongling Wang, Yi-Xin Chen, and Shuzheng Mao. SPIE, 1998. http://dx.doi.org/10.1117/12.300681.

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Zeng, Xianwu, Corey A. Kwapich, Yong X. Gan, and Ahalapitiya H. Jayatissa. "Thermosensitive conductivity of CdS thin film." In SPIE Defense, Security, and Sensing, edited by Nibir K. Dhar, Priyalal S. Wijewarnasuriya, and Achyut K. Dutta. SPIE, 2010. http://dx.doi.org/10.1117/12.850616.

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Jlassi, Khouloud. "Rational Synthesis, Characterization, and Application of Environmentally‐Friendly (Polymer‐Carbon Dot) Hybrid Composite Film for Fast and Efficient UV Assisted Cd2+ removal from water." In Qatar University Annual Research Forum & Exhibition. Qatar University Press, 2020. http://dx.doi.org/10.29117/quarfe.2020.0040.

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Carbon-dots (CDs) are of particular interest in numerous applications. However, their efficiency for heavy metal removal from wastewater was not yet reported. Herein, we rationally synthesized CDs from petroleum-coke-waste via hydrothermal treatment in the presence of ammonia.This drove the formation of outstanding photoluminescent, water-soluble, biocompatible, and high yield of monodispersed sub-5 nm CDs. The CDs are co-doped with high 10 % of N and 0.2 % of S. The as-prepared CDs possess unprecedented photoluminescent properties over broad pH range making these dots unique efficient pH sens
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Collins, R. W., Jie Chen, Jian Li, and M. N. Sestak. "Optics of CdS/CdTe thin film photovoltaics." In 2011 37th IEEE Photovoltaic Specialists Conference (PVSC 2011). IEEE, 2011. http://dx.doi.org/10.1109/pvsc.2011.6186648.

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Khudiar, Ausama I., M. Zulfequar, Zahid H. Khan, et al. "Laser Crystallization of Nanostructure CdS Thin Film." In INTERNATIONAL CONFERENCE ON ADVANCED NANOMATERIALS AND NANOTECHNOLOGY (ICANN-2009). AIP, 2010. http://dx.doi.org/10.1063/1.3504349.

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Pawar, S. B., S. A. Pawar, P. N. Bhosale, and P. S. Patil. "Photoelectrochemical properties of chemosynthesized CdS thin film." In SOLID STATE PHYSICS: Proceedings of the 56th DAE Solid State Physics Symposium 2011. AIP, 2012. http://dx.doi.org/10.1063/1.4710377.

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Potamialis, C., F. Lisco, B. Maniscalco, et al. "Photoluminescence imaging analysis of doping in thin film CdS and CdS/CdTe devices." In 2017 IEEE 44th Photovoltaic Specialists Conference (PVSC). IEEE, 2017. http://dx.doi.org/10.1109/pvsc.2017.8521507.

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Bouchenaki, Ch, J. Y. Bigot, A. Daunois, et al. "Preparation And Investigation Of Hybrid CdS Film Devices." In 1989 Intl Congress on Optical Science and Engineering, edited by Jean-Bernard Grun. SPIE, 1989. http://dx.doi.org/10.1117/12.961393.

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Wu, Chen, Fan Yang, Yi Zhang, Kai Wu, and Xiying Ma. "Photoelectronic Properties of MoS2/CdS Thin Film Heterojunction." In 2015 International Conference on Mechatronics, Electronic, Industrial and Control Engineering. Atlantis Press, 2015. http://dx.doi.org/10.2991/meic-15.2015.101.

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Demtsu, Samuel, Shubhra Bansal, and David Albin. "Intrinsic stability of thin-film CdS/CdTe modules." In 2010 35th IEEE Photovoltaic Specialists Conference (PVSC). IEEE, 2010. http://dx.doi.org/10.1109/pvsc.2010.5614753.

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Reports on the topic "CdS film"

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Sandwisch, D. W. High-throughput manufacturing of thin-film CdS/CdTe photovoltaic modules. Annual subcontract report, 16 November 1994--15 November 1995. Office of Scientific and Technical Information (OSTI), 1997. http://dx.doi.org/10.2172/453485.

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Sandwisch, D. W. High-throughput manufacturing of thin-film CdS/CdTe photovoltaic modules. Annual subcontract report, 16 September 1996--15 January 1998. Office of Scientific and Technical Information (OSTI), 1998. http://dx.doi.org/10.2172/663418.

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Gessert, Tim. Development of CdS/CdTe Thin Film Devices for St. Gobain Coated Glass: Cooperative Research and Development Final Report, CRADA Number CRD-08-317. Office of Scientific and Technical Information (OSTI), 2012. http://dx.doi.org/10.2172/1039787.

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Aparicio-Razo, Mario. A mechanistic study of the electrochemical formation of CdS CdSe semiconducting films. Portland State University Library, 2000. http://dx.doi.org/10.15760/etd.448.

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Tarrant, D. E., and R. R. Gay. Thin-film photovoltaic partnership -- CIS-based thin film PV technology: Final technical report, September 1995--December 1998. Office of Scientific and Technical Information (OSTI), 1999. http://dx.doi.org/10.2172/752655.

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Amaya, Ashley. RTI International’s Address-Based Sampling Atlas: Drop points. RTI Press, 2017. http://dx.doi.org/10.3768/rtipress.2017.op.0047.1712.

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The Computerized Delivery Sequence (CDS) file contains listings for nearly all addresses in the United States. Survey researchers use the CDS as a sampling frame from which to draw an address-based sample (ABS). More than 700,000 addresses on the CDS are marked as drop points, which are mail receptacles shared by multiple housing units (drop units). Drop points are a challenge to sample and present a potential source of error because of their "one-to-many" relationships. Several techniques have been developed to overcome this challenge, including deleting them from the frame or sampling all un
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Tarrant, D. E., and R. R. Gay. Commercialization of CIS-Based Thin-Film PV: Final Technical Report, August 1998--November 2001. Office of Scientific and Technical Information (OSTI), 2002. http://dx.doi.org/10.2172/15000973.

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Tarrant, D. E., and R. R. Gay. CIS-based thin film PV technology. Phase 2 technical report, October 1996--October 1997. Office of Scientific and Technical Information (OSTI), 1998. http://dx.doi.org/10.2172/658191.

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Tarrant, D. E., and R. R. Gay. CIS-based thin film PV technology. Phase 1 annual technical report, September 1995--September 1996. Office of Scientific and Technical Information (OSTI), 1997. http://dx.doi.org/10.2172/463631.

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Tarrant, D. E., and R. R. Gay. Commercialization of CIS-Based Thin-Film PV: Annual Technical Report--Phase II, September 1999 - August 2000. Office of Scientific and Technical Information (OSTI), 2001. http://dx.doi.org/10.2172/786355.

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