Preparation and Growth Mechanism of Pyramid-Shaped Cu2ZnSnS4 Monocrystal and the Simulation of Its Monograin Layer Solar Cells

IF 1.5 4区 材料科学 Q3 Chemistry Crystal Research and Technology Pub Date : 2024-11-09 DOI:10.1002/crat.202400151
Wenfeng Fu, Xupeng Zhu, Jun Liao, Qiang Ru, Shuwen Xue, Jun Zhang
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Abstract

The Cu2ZnSnS4(CZTS) monocrystal as an important component of the optical absorption layer in monograin layer solar cells, has excellent crystallization characteristics and adjustable photogenerated carrier concentration. The shape of the CZTS monocrystal directly affects the utilization of incident light and the contact area during the preparation of the back electrode when they are densely packed to form a single-layer absorption layer. Herein, a kesterite-phase pyramid-shaped CZTS monocrystal prepared by the molten salt method is reported, which can improve the efficiency of incident light utilization and increase the contact area during back electrode preparation. The X-Ray diffraction, Raman spectroscopy, transmission electron microscopy, and scanning electron microscopy are used to characterize the crystallinity and crystal shape of pyramid-shaped CZTS monocrystal. Besides, Finite-Difference simulation calculation is employed to reveal the optical response and corresponding monograin layer solar cells performance of densely packed CZTS. The results show that the pyramid-shaped structure exhibited excellent incident light trapping ability, and the simulated device achieves a cell efficiency with above 13.6% after parameter optimization. The work provides a method for preparing pyramid-shaped CZTS monocrystal, and a new strategy to further improve the efficiency of CZTS-based monograin layer solar cells.

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锥形Cu2ZnSnS4单晶的制备、生长机理及其单晶层太阳能电池的模拟
Cu2ZnSnS4(CZTS)单晶具有优良的结晶特性和可调节的光生载流子浓度,是单晶太阳能电池中光学吸收层的重要组成部分。当CZTS单晶密集堆积形成单层吸收层时,其形状直接影响到背电极制备过程中入射光的利用率和接触面积。本文报道了一种采用熔盐法制备的kesterte相金字塔型CZTS单晶,该单晶可以提高入射光的利用效率,增加背电极制备过程中的接触面积。利用x射线衍射、拉曼光谱、透射电子显微镜和扫描电子显微镜对金字塔形CZTS单晶的结晶度和晶体形状进行了表征。此外,利用有限差分模拟计算揭示了密集堆积CZTS的光学响应和相应的单粒层太阳能电池性能。结果表明,金字塔形结构具有良好的入射光捕获能力,经过参数优化后,模拟器件的电池效率达到13.6%以上。本研究提供了一种制备金字塔形CZTS单晶的方法,并为进一步提高CZTS单晶太阳能电池的效率提供了新的策略。
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来源期刊
CiteScore
2.50
自引率
6.70%
发文量
121
审稿时长
1.9 months
期刊介绍: The journal Crystal Research and Technology is a pure online Journal (since 2012). Crystal Research and Technology is an international journal examining all aspects of research within experimental, industrial, and theoretical crystallography. The journal covers the relevant aspects of -crystal growth techniques and phenomena (including bulk growth, thin films) -modern crystalline materials (e.g. smart materials, nanocrystals, quasicrystals, liquid crystals) -industrial crystallisation -application of crystals in materials science, electronics, data storage, and optics -experimental, simulation and theoretical studies of the structural properties of crystals -crystallographic computing
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Issue Information: Crystal Research and Technology 2'2025 Issue Information: Crystal Research and Technology 1'2025 Approaching Six Decades! Research Progress on Stability of FAPbI3 Perovskite Solar Cells Molecular Simulations of Stereocomplex Crystallization in Grafted Diblock Copolymers
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