← 返回
半透明钙钛矿太阳能电池组件的制备、效率损失分析及基于仿真的优化研究
Fabrication, efficiency loss analysis, and simulation-based optimization of semi-transparent perovskite solar cell modules for photovoltaic windows
| 作者 | Yuqi Huang · Chao Shena · Chunguang Caib · Wenzhi Zhub · Yongqi Liang · Soteris A.Kalogirou · Julian Wangd |
| 期刊 | Solar Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 299 卷 |
| 技术分类 | 光伏发电技术 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | 25 cm2 Semi-transparent [perovskite](https://www.sciencedirect.com/topics/chemical-engineering/perovskite "Learn more about perovskite from ScienceDirect's AI-generated Topic Pages") modules via multi-scale fabrication. |
语言:
中文摘要
摘要 建筑领域对碳中和的迫切需求推动了半透明光伏窗户成为建筑一体化光伏技术的关键组成部分。尽管钙钛矿材料具有带隙可调、吸收系数高和可溶液加工等独特优势,但其在大面积制备过程中显著的效率衰减问题严重制约了实际应用。本研究提出一种多尺度协同制造策略,集成气刀刮涂、磁控溅射和脉冲激光刻蚀工艺,成功制备出面积为25 cm²的半透明钙钛矿太阳能电池组件(ST-PSCM)。该组件实现了27.2%的平均可见光透过率(AVT)、2.44%的功率转换效率(PCE)以及82的显色指数,满足建筑应用的功能性要求。通过引入包含辐射复合、非辐射复合和电阻损耗的电路量化模型,研究发现体相复合(65.17%)和串联电阻损耗(29.53%)是效率损失的主要机制。此外,借助Solar Design光电耦合仿真平台,系统分析了ST-PSCM的温度与光强响应特性。通过对各功能层厚度进行逐层优化,组件在38.3% AVT下实现了2.80%的PCE。本研究为半透明钙钛矿光伏窗户的大规模应用提供了一种可扩展的制造方法,对推动近零能耗建筑技术的发展具有重要的实践价值。
English Abstract
Abstract The urgent demand for carbon neutrality in buildings has propelled semi-transparent photovoltaic windows to become a pivotal component of Building Integrated Photovoltaics technology. Despite the unique advantages of perovskite materials, such as tunable bandgap, high absorption coefficient, and solution processability, their practical application is hindered by significant efficiency degradation during large-area fabrication. This study proposes a multi-scale collaborative manufacturing strategy, integrating air-knife blade coating, magnetron sputtering, and pulsed laser etching, to successfully fabricate a 25 cm 2 semi-transparent perovskite solar cell module (ST-PSCM). The module achieves a 27.2 % average visible light transmittance (AVT), a 2.44 % power conversion efficiency (PCE), and a color rendering index of 82, meeting the functional requirements for building applications. Through a circuit quantification model that incorporates radiative recombination, non-radiative recombination, and resistive losses, the study identifies bulk recombination (65.17 %) and series resistance losses (29.53 %) as the primary mechanisms of efficiency loss. Furthermore, leveraging the Solar Design optoelectronic coupling simulation platform, the temperature and light intensity response characteristics of the ST-PSCM were systematically analyzed. Through a layer-by-layer optimization of thicknesses of each functional layer, the module achieved a PCE of 2.80 % at 38.3 % AVT. This study provides a scalable manufacturing approach for the large-scale application of semi-transparent perovskite photovoltaic windows, offering significant practical value for advancing the development of near-zero energy building technologies.
S
SunView 深度解读
该半透明钙钛矿光伏窗技术为阳光电源BIPV场景提供新思路。研究中的多尺度协同制造策略与我司SG系列逆变器的MPPT优化技术高度契合,可针对半透明组件的温度和光强响应特性进行算法优化。其2.44%效率虽低于传统组件,但82显色指数和27.2%透光率满足建筑美学需求,结合iSolarCloud平台的预测性维护功能,可实现近零能耗建筑的智能能量管理。电路量化模型揭示的体复合损失(65.17%)和串联电阻损耗(29.53%)分析方法,对我司PowerTitan储能系统的损耗建模具有借鉴意义,可优化PCS功率转换效率。