Solar energy paper index
Synthesis and characterization of RF-sputtered ZnTe/Cu <sub>2−</sub> <i> <sub>x</sub> </i> Te thin films for solar cell applications
One-line summary
A solar energy research paper on Synthesis and characterization of RF-sputtered ZnTe/Cu <sub>2−</sub> <i> <sub>x</sub> </i> Te thin films for solar cell applications.
Engineering notes
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Chinese explanation / 中文解读
中文解读待补充:本站会优先为光伏效率、钙钛矿太阳能电池、储能技术、太阳能热利用、BIPV、并网技术等高价值论文补充中文说明。
Original abstract
The incorporation of copper and oxygen into zinc telluride (ZnTe) thin films deposited by radio-frequency magnetron sputtering from a single ZnTe–CuO composite target was investigated. The nominal Cu and O concentrations ranged from 3 to 13 atom %, and films were grown at substrate temperatures of 300 and 350 °C. Energy-dispersive X-ray spectroscopy confirmed controlled compositional transfer from the target to the films. X-ray diffraction analysis revealed that all films are polycrystalline, exhibiting a coexistence of zinc blende and wurtzite ZnTe phases. Low dopant concentrations produced only minor lattice modifications, while higher Cu and O contents promoted the formation of Cu 2− x Te secondary phases, as confirmed by Raman spectroscopy, grazing-incidence X-ray diffraction and scanning electron microscopy. Optical measurements showed a significant reduction in infrared transmittance with increasing Cu concentration, attributed to the metallic-like absorption of Cu 2− x Te phases. Electrical characterization revealed a transition from semiconducting to highly conductive behavior with resistivity decreasing from approximately 10 2 to 10 −2 Ω·cm for films grown at 300 °C and from 10 1 to 10 −3 Ω·cm for films grown at 350 °C. Simultaneously, the carrier concentration increased from approximately 10 17 to 10 21 cm −3 and the mobility from 10 −1 to 10 1 cm 2 ·V −1 ·s −1 . These results indicate that structural, optical, and electrical properties of ZnTe are primarily influenced by Cu incorporation and the formation of conductive Cu-rich secondary phases, yielding a biphasic system composed of semiconducting ZnTe and conductive Cu-rich telluride phases. These material properties suggest potential relevance for future studies of back-contact materials in CdTe-based solar cells.
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