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Impact of potassium doping on the physical properties of cadmium sulfide thin films prepared by sol-gel screen printing technique

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dc.contributor.author Phathaitep Raksa
dc.contributor.author Patsorn Boon-on
dc.contributor.author Witawat Ponhan
dc.contributor.author Ekasiddh Wongrat
dc.contributor.author Prayoonsak Pluengphon
dc.contributor.author Piyanooch Nedkun
dc.contributor.author Panupat Chaiworn
dc.contributor.author Auttasit Tubtimtae
dc.contributor.author ไผทเทพ รักษา
dc.contributor.author วิทวัส พลหาญ
dc.contributor.author เอกสิทธิ์ วงศ์ราษฎร์
dc.contributor.author ประยูรศักดิ์ เปลื้องผล
dc.contributor.author ปิยนุช เนตรคุณ
dc.contributor.author ภาณุพัฒน์ ชัยวร
dc.contributor.author อัฐสิษฐ์ ทับทิมแท้
dc.contributor.other Rajamangala University of Technology Isan. Faculty of Science and Liberal Arts en_US
dc.contributor.other Silpakorn University Sanam Chandra Palace Campus. Faculty of Education en_US
dc.contributor.other Sakon Nakhon Rajabhat University. Faculty of Science and Technology en_US
dc.contributor.other University of Phayao. School of Science en_US
dc.contributor.other Huachiew Chalermprakiet University. Faculty of Science and Technology en_US
dc.contributor.other Kasetsart University Chalermphrakiet Sakon Nakhon Province Campus. Faculty of Science and Engineering en_US
dc.contributor.other Chiang Mai Rajabhat. Department of Physics and General Sciences en_US
dc.contributor.other Kasetsart University Kamphaeng Saen Campus. Faculty of Liberal Arts and Science en_US
dc.date.accessioned 2026-07-18T14:01:14Z
dc.date.available 2026-07-18T14:01:14Z
dc.date.issued 2026
dc.identifier.citation Ceramics International 52, 11, Part B, May 2026 : 17905-17924 en_US
dc.identifier.other https://doi.org/10.1016/j.ceramint.2026.02.369
dc.identifier.uri https://has.hcu.ac.th/xmlui/handle/123456789/5852
dc.description สามารถเข้าถึงบทควาฉบับเต็ม (Full Text) ได้ที่ : https://www.sciencedirect.com/science/article/abs/pii/S0272884226009272 en_US
dc.description.abstract Cadmium sulfide (CdS) thin films, both undoped and doped with various concentrations of potassium (K) (0.1, 0.2, 0.3, 0.4, and 0.5 M), were synthesized on borosilicate glass substrates using the sol-gel screen-printing technique. The results showed that K-doping at concentrations above 0.3 M promoted grain agglomeration, resulting in a compact morphology with no significant voids or porosity across all thin film conditions, indicating strong adherence and coverage between grains and nanoparticles (NPs). X-ray diffraction (XRD) analysis confirmed a hexagonal structure for the undoped and 0.1 M K-doped films; however, this phase disappeared at higher K concentrations. A low-intensity cubic phase was observed across all the samples. These structural observations were further validated using Raman spectroscopy. The evolution of the photoluminescence (PL) peaks with increasing K-doping concentration indicates structural distortions, suggesting that the incorporation of K+ions may introduce new defects or degrade the crystal quality. The presence of Cd-S bonds within the films was validated by Fourier-transform infrared (FTIR) and X-ray photoelectron spectroscopy (XPS). Optical analysis showed low transmittance (0.45 – 1.75%) and reflectance (0.07 – 0.70%) values in the 550 – 1000 nm wavelength range, indicating distinct absorptive behavior. The energy band gap (Eg) decreased from 2.21 eV for the undoped film to 1.92 eV as the K concentration increased up to 0.4 M, then rose slightly to 2.18 eV at 0.5 M doping. Mott-Schottky analysis demonstrated a shift in the conduction band edge from -1.15 V (undoped) to between -0.68 and - 0.99 V (K-doped), along with an increase in donor density from 5.329 × 1020 to 27.156 × 1020 cm3 for the 0.2 M to 0.5 M K-doped films. According to the EIS results, the 0.4 – 0.5 M K-doped CdS thin films induce the generated electrons and exhibit a lower impedance with electron lifetimes due to the higher electrocatalytic activity and faster exciton recombination, causing subsequently degraded more rapidly in electrolyte region. Therefore, the optimal K-doping condition presents a highly promising active electrode material for application in electrochemical systems and other optoelectronic devices. en_US
dc.language.iso en_US en_US
dc.subject Cadmium sulfide thin film en_US
dc.subject ฟิล์มบางแคดเมียมซัลไฟด์ en_US
dc.subject Thin films en_US
dc.subject ฟิล์มบาง en_US
dc.subject Potassium doping en_US
dc.subject การเติมโพแทสเซียมเจือปน en_US
dc.subject Sol-gel en_US
dc.subject โซล-เจล en_US
dc.subject Mott-Schottky analysis y en_US
dc.subject การวิเคราะห์แบบ Mott-Schottk en_US
dc.subject Cadmium sulfide en_US
dc.subject แคดเมียมซัลไฟด์ en_US
dc.subject Electrochemical Impedance Spectroscopy en_US
dc.subject สเปกโทรสโกปีอิมพีแดนซ์ทางไฟฟ้าเคมี en_US
dc.subject วิทยาศาสตร์และเทคโนโลยี en_US
dc.title Impact of potassium doping on the physical properties of cadmium sulfide thin films prepared by sol-gel screen printing technique en_US
dc.type Article en_US


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