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光伏发电技术 ★ 5.0

通过光电机械仿真分析柔性钙钛矿太阳能电池的机械稳定性

Mechanical stability analysis of flexible perovskite solar cells via opto-electro-mechanical simulation

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中文摘要

摘要 作为新兴的下一代光伏技术,柔性钙钛矿太阳能电池的性能已得到广泛研究。然而,对于各功能层的机械稳定性及其相应疲劳寿命的深入理解仍相对滞后。本研究通过光电机械耦合仿真,系统探究了弯曲变形条件下机械行为对器件光电特性及稳定性的双重影响。对器件中各层裂纹形成与能量积累——这些影响其疲劳寿命的关键因素——进行了系统且定量的分析。对于n-i-p结构而言,电子传输层和钙钛矿层的杨氏模量以及金属层的沉积位置在决定机械稳定性方面起着关键作用。其中,杨氏模量较小的钙钛矿层更有利于延长器件寿命;而电子传输层则需在自身承受较大应力与导致钙钛矿层产生更高能量积累之间进行权衡。此外,电子传输层与钙钛矿层之间的界面是裂纹萌生并深入穿透至钙钛矿层的主要区域,成为限制整个器件疲劳寿命的关键部位。本研究结果揭示了与疲劳寿命相关的机械稳定性机制,为设计高稳定性的柔性钙钛矿太阳能电池提供了重要的理论指导。

English Abstract

Abstract As emerging next-generation photovoltaics, the performance of flexible perovskite solar cells has been extensively studied. However, the in-depth understanding of mechanical stability and corresponding fatigue life of each layer still lags behind. In this work, an opto-electro-mechanical simulation is performed to investigate the effect of mechanical behaviors on both optoelectronic characteristics and device stability under bending deformation. The formation of fractures and energy accumulation of each layer in device, which affect their fatigue life, are analyzed systematically and quantitatively. For n-i-p configuration, Young’s modulus of electron transport layer and perovskite, as well as the deposition position of the metal layer, play a decisive role in mechanical stability. Among them, perovskite layer with small Young’s modulus is more conducive to prolonging device lifetime, while electron transport layer needs to make a trade-off between bearing greater stress on itself and causing greater energy accumulation to perovskite. Furthermore, the interface between electron transport layer and perovskite where cracks generate and penetrate deep into perovskite, is the main position limiting overall device fatigue life. The findings shed light on mechanical stability with respect to fatigue life, which draws significant conclusions for the design of stable flexible perovskite solar cells.
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SunView 深度解读

该柔性钙钛矿电池机械稳定性研究对阳光电源光伏逆变器产品具有前瞻价值。文章揭示的电子传输层与钙钛矿界面应力集中问题,为SG系列逆变器适配新型柔性组件提供设计依据。通过光-电-力多物理场仿真方法,可优化MPPT算法在弯曲形变场景下的追踪策略,提升iSolarCloud平台对柔性光伏系统的疲劳寿命预测能力。该研究的材料杨氏模量优化思路,亦可启发功率器件封装应力管理,增强SiC/GaN模块在温度循环下的可靠性,支撑分布式光伏与储能融合应用场景。