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探究恶劣环境条件下 CZTSSe 太阳能电池的降解机制
Exploring degradation mechanisms in CZTSSe solar cells for harsh environmental conditions
| 作者 | Mohammad Istiaque Hossain · Yoganash Putthisigamany · Atef Zekri · Yongfeng Tonga · Puvaneswaran Chelvanathan · Brahim Aiss |
| 期刊 | Solar Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 298 卷 |
| 技术分类 | 光伏发电技术 |
| 技术标签 | 工商业光伏 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | Studied long-term aging of [CZTSSe](https://www.sciencedirect.com/topics/earth-and-planetary-sciences/selenide "Learn more about CZTSSe from ScienceDirect's AI-generated Topic Pages") solar cells under outdoor Qatar conditions for two months. |
语言:
中文摘要
摘要:铜锌锡硫硒(CZTSSe)太阳能电池因其采用地壳中储量丰富、无毒的材料以及具备低成本制造潜力,已成为现有光伏技术的一种有前景的替代方案。然而,理解CZTSSe太阳能电池在运行过程中的性能变化及其长期稳定性,对于其实现商业化至关重要,尤其是在恶劣环境条件下的表现尤为关键。目前针对CZTSSe太阳能电池的稳定性研究往往缺乏标准化流程和长期数据积累,这阻碍了对降解机制的有效认知。本研究聚焦于对CZTSSe太阳能电池进行为期三个月的长期老化效应分析,以识别其主要的降解路径。实验制备了结构为玻璃/Mo/CZTSSe/CdS/i-ZnO/ITO/金属电极的太阳能电池器件,并将样品置于卡塔尔的户外测试场地暴露三个月,以考察其降解行为。结果表明,吸收层未出现明显降解现象,而缓冲层则发生了逐渐分解,该结论已通过XPS、TEM和ToF-SIMS分析得到证实。这些发现为理解CZTSSe太阳能电池的降解机制提供了有价值的见解,并强调了解决稳定性挑战对于实现其长期部署的重要性,特别是在恶劣环境中的应用。此外,本研究也凸显了优化材料选择与器件结构的必要性,以提升CZTSSe太阳能电池技术的使用寿命和商业可行性。
English Abstract
Abstract Copper Zinc Tin Sulfide Selenide (CZTSSe) solar cells have emerged as a promising alternative to established photovoltaic technologies due to their use of earth-abundant, non-toxic materials and potential for cost-effective manufacturing. However, understanding the operational and long-term stability of CZTSSE solar cells is crucial for their commercialization, particularly under harsh environmental conditions. Stability studies on CZTSSe solar cells often lack standardization and long-term data, which hampers the effective understanding of degradation mechanisms. Our research focuses on examining the aging effects in CZTSSe solar cells over an extended period of three months to identify key degradation pathways. Solar cell devices with a structure of Glass/Mo/CZTSSe/CdS/i-ZnO/ITO/metal contact were fabricated. Samples were exposed to outdoor testing facility in Qatar for three months to understand the degradation pathway. As found, no degradation was observed within the absorber layer whereas a gradual decomposition of the buffer layer has been identified, as confirmed by XPS , TEM and ToF-SIMS analyses. These findings provide valuable insights into the degradation mechanisms of CZTSSe solar cells and highlight the importance of addressing stability challenges for long-term deployment, especially in harsh environments. Furthermore, the study underscores the need for optimized materials and device structures to enhance the longevity and commercial viability of CZTSSe solar cell technology.
S
SunView 深度解读
该CZTSSe电池降解机制研究对阳光电源SG系列光伏逆变器及iSolarCloud平台具有重要参考价值。研究揭示缓冲层在恶劣环境下的渐进分解是主要失效路径,而非吸收层降解,这为逆变器MPPT算法优化提供依据。建议在iSolarCloud智能运维平台中针对极端气候地区(如中东高温)增设电池缓冲层老化预测模型,通过IV曲线特征变化实现早期故障预警。同时可指导工商业光伏项目在组件选型时强化缓冲层稳定性评估,延长系统全生命周期效益,提升阳光电源在恶劣环境光伏市场的竞争力。