采用溶液工程的方法对Cu2ZnSnS4太阳能电池进行缺陷调节,提高电池效率

IF 6.6 2区 材料科学 Q2 ENERGY & FUELS Solar Energy Materials and Solar Cells Pub Date : 2025-06-15 Epub Date: 2025-03-04 DOI:10.1016/j.solmat.2025.113555
Long Zou , Hai Ma , Qiang Zhu , Bin Xu , Hongru Wang , Lin Sun , Ye Chen
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引用次数: 0

摘要

溶液法制备Cu2ZnSnS4 (CZTS)具有高效、简单、成本低等优点,具有较大的应用潜力。然而,CZTS仍然面临着吸收剂结晶度差和复杂的内在有害缺陷等问题,这些问题严重限制了电池的效率。我们开发了一种简单有效的生长大晶粒CZTS薄膜和调节缺陷的方法。通过降低前驱体溶液的浓度,吸收剂的结晶度显著增强,从而避免了空隙和细颗粒的出现,大大提高了太阳能电池的填充系数。由于吸收剂结晶度的提高和CuZn缺陷能级的降低,载流子密度显著增加。此外,深层缺陷密度的降低也降低了非辐射复合。通过该方法,无需额外后退火的CZTS太阳能电池的光伏性能得到了显著提高,电池效率达到7.6%。
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Defect regulation enhances the efficiency of Cu2ZnSnS4 solar cells by solution engineering
The preparation of Cu2ZnSnS4 (CZTS) through the solution method demonstrates significant application potential due to its high efficiency, simplicity and low cost. However, CZTS still faces several issues, including poor crystallinity of the absorber and complex intrinsic harmful defects, which severely limit the efficiency of the cell. We have developed a simple and effective method for growing large-grain CZTS thin films and regulating defects. By reducing the concentration of the precursor solution, the crystallinity of the absorber is significantly enhanced, thereby avoiding the occurrence of voids and fine grains, and greatly improving the Fill Factor of the solar cell. Due to the improved crystallinity of the absorber and the shallower energy level of the CuZn defect, the carrier density has significantly increased. Furthermore, the reduction in the density of deep-level defects also decreases non-radiative recombination. Through this method, the photovoltaic performance of CZTS solar cells without extra post-annealing has been significantly improved, achieving a cell efficiency of 7.6 %.
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来源期刊
Solar Energy Materials and Solar Cells
Solar Energy Materials and Solar Cells 工程技术-材料科学:综合
CiteScore
12.60
自引率
11.60%
发文量
513
审稿时长
47 days
期刊介绍: Solar Energy Materials & Solar Cells is intended as a vehicle for the dissemination of research results on materials science and technology related to photovoltaic, photothermal and photoelectrochemical solar energy conversion. Materials science is taken in the broadest possible sense and encompasses physics, chemistry, optics, materials fabrication and analysis for all types of materials.
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