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通过混合反应磁控溅射制备的硒化锑太阳能电池。

Antimony Selenide Solar Cells Fabricated by Hybrid Reactive Magnetron Sputtering.

作者信息

Brito Daniel, Anacleto Pedro, Pérez-Rodríguez Ana, Fonseca José, Santos Pedro, Alves Marina, Cavalli Alessandro, Sharma Deepanjan, Claro Marcel S, Nicoara Nicoleta, Sadewasser Sascha

机构信息

International Iberian Nanotechnology Laboratory, Av. Mestre José Veiga, 4715-330 Braga, Portugal.

Departamento de Física e Astronomia, Faculdade de Ciências, Universidade do Porto, Rua do Campo Alegre s/n, 4169-007 Porto, Portugal.

出版信息

Nanomaterials (Basel). 2023 Aug 5;13(15):2257. doi: 10.3390/nano13152257.

Abstract

The fabrication of SbSe thin-film solar cells deposited by a pulsed hybrid reactive magnetron sputtering (PHRMS) was proposed and examined for different growth conditions. The influence of growth temperature and Se pulse period were studied in terms of morphology, crystal structure, and composition. The SbSe growth showed to be dependent on the growth temperature, with a larger crystal size for growth at 270 °C. By controlling the Se pulse period, the crystal structure and crystal size could be modified as a function of the supplied Se amount. The solar cell performance for SbSe absorbers deposited at various temperatures, Se pulse periods and thicknesses were assessed through current-voltage characteristics. A power conversion efficiency (PCE) of 3.7% was achieved for a SbSe solar cell with 900 nm thickness, SbSe deposited at 270 °C and Se pulses with 0.1 s duration and period of 0.5 s. Finally, annealing the complete solar cell at 100 °C led to a further improvement of the V, leading to a PCE of 3.8%, slightly higher than the best reported SbSe solar cell prepared by sputtering without post-selenization.

摘要

提出了通过脉冲混合反应磁控溅射(PHRMS)制备SbSe薄膜太阳能电池的方法,并对不同生长条件进行了研究。从形貌、晶体结构和成分方面研究了生长温度和硒脉冲周期的影响。结果表明,SbSe的生长依赖于生长温度,在270°C下生长时晶体尺寸更大。通过控制硒脉冲周期,可以根据供应的硒量改变晶体结构和晶体尺寸。通过电流-电压特性评估了在不同温度、硒脉冲周期和厚度下沉积的SbSe吸收层的太阳能电池性能。对于厚度为900nm、在270°C下沉积的SbSe以及持续时间为0.1s、周期为0.5s的硒脉冲,SbSe太阳能电池实现了3.7%的功率转换效率(PCE)。最后,在100°C下对完整的太阳能电池进行退火处理,使开路电压进一步提高,PCE达到3.8%,略高于报道的通过溅射制备且无后硒化处理的最佳SbSe太阳能电池。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/59ca/10420897/eb7e1f5ce6a6/nanomaterials-13-02257-g001.jpg

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