光伏系统
光伏
可再生能源
商业化
集中太阳能
相变材料
按来源划分的电力成本
发电
材料科学
工艺工程
工程物理
太阳能
热的
热能
电
能量转换
环境科学
热电发电机
高效能源利用
热能储存
热电材料
机械工程
相变
投资回收期
能量转换
灵活性(工程)
汽车工程
能源管理
电子设备和系统的热管理
工程类
热导率
火力发电站
太阳能
热效率
热电效应
光电-热混合太阳能集热器
分布式发电
工作温度
计算机科学
系统工程
出处
期刊:Processes
[Multidisciplinary Digital Publishing Institute]
日期:2026-06-12
卷期号:14 (12): 1912-1912
摘要
The escalating global demand for renewable energy has positioned solar photovoltaics (PV) as a critical technology for achieving net-zero emissions. However, PV efficiency is strictly limited by thermal degradation, where elevated operating temperatures significantly reduce power output and accelerate material aging. This review systematically evaluates the integration of advanced phase change materials (PCMs) as a passive thermal management solution. We analyze the transition from material-level innovations—including nano-enhanced PCMs, 3D conductive frameworks, and shape-stabilization—to system-level hybrid architectures such as liquid—PCM, heat pipe-fin, and thermoelectric generator (TEG) integrations. Synthesis of recent empirical data (2024–2026) demonstrates that optimized PCM composites can achieve PV temperature reductions of up to 32 °C and electrical efficiency enhancements exceeding 19%. Furthermore, techno-economic assessments reveal that these systems can reduce the levelized cost of energy (LCOE) by 5–15% and achieve energy payback times as short as 1.5 years. Finally, this paper identifies critical research gaps in long-term outdoor durability, AI-driven predictive modeling, and sustainable bio-based encapsulation, providing a strategic roadmap for the commercialization of next-generation solar thermal management systems.
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