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Updated: Mar 3, 2026

Close-Space Sublimation-Deposited Ultra-Thin CdSeTe/CdTe Solar Cells for Enhanced Short-Circuit Current Density and Photoluminescence
Published on: March 6, 2020
Formation of configurable uniform CdSeTe thin films by close-space sublimation deposition of multiple alternating
Pascal Jundt1, Olaf Zywitzki2, Thomas Modes2
1Research and Development, CTF Solar GmbH, Dresden, Germany.
Abstract:
Incorporation of selenium within cadmium telluride to form the CdSexTe1-x alloy has enabled higher device efficiencies in photovoltaic applications through improved passivation and current collection. Recent investigations of this alloy have simultaneously indicated significant potential for further performance gains as well as potentially serious detrimental characteristics. Exploring how best to utilize this important material requires consistent, configurable film deposition. Absorber layers are often deposited by close-space sublimation, which can produce high-quality films at large scale. It has previously been demonstrated that close-space sublimation of CdSeTe material directly is inconvenient and inflexible; therefore, an alternative method with greater consistency and control over film composition is sought. In this work, CdSeTe films were formed by close-space sublimation of alternating CdSe and CdTe layers followed by a high-temperature annealing in the presence of CdCl2. Under the optimal deposition conditions, this technique was shown to produce high-quality films of CdSeTe with homogeneous elemental distribution, uniform grain size, and low roughness. However, this method also exhibited a significant tendency to form numerous voids which largely persist after CdCl2 annealing. The source of this porosity was investigated and determined to primarily be resublimation of CdTe during the higher-temperature deposition of the CdSe layers. The process window to prevent voiding was observed to be rather small; while this would be a significant detriment in a production setting, it is less important in the targeted application for this approach, which is fundamental material and device investigations.

