首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Effects on amorphous silicon photovoltaic performance from high-temperature annealing pulses in photovoltaic thermal hybrid devices
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Effects on amorphous silicon photovoltaic performance from high-temperature annealing pulses in photovoltaic thermal hybrid devices

机译:光伏热混合器件中高温退火脉冲对非晶硅光伏性能的影响

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摘要

There is a renewed interest in photovoltaic solar thermal (PVT) hybrid systems, which harvest solar energy for heat and electricity. Typically, a main focus of a PVT system is to cool the photovoltaic (PV) cells to improve the electrical performance; however, this causes the thermal component to under-perform compared to a solar thermal collector. The low temperature coefficients of amorphous silicon (a-Si:H) allow the PV cells to be operated at high temperatures, which are a potential candidate for a more symbiotic PVT system. The fundamental challenge of a-Si:H PV is light-induced degradation known as the StaeblerWronski effect (SWE). Fortunately, SWE is reversible and the a-Si:H PV efficiency can be returned to its initial state if the cell is annealed. Thus an opportunity exists to deposit a-Si:H directly on the solar thermal absorber plate where the cells could reach the high temperatures required for annealing. In this study, this opportunity is explored experimentally. First a-Si:H PV cells were annealed for 1 h at 100 °C on a 12 h cycle and for the remaining time the cells were degraded at 50 °C in order to simulate stagnation of a PVT system for 1 h once a day. It was found when comparing the cells after stabilization at normal 50 °C degradation that this annealing sequence resulted in a 10.6% energy gain when compared to a cell that was only degraded at 50 °C.
机译:光伏太阳能热(PVT)混合系统重新引起了人们的兴趣,该系统可收集太阳能来获取热量和电能。通常,PVT系统的主要重点是冷却光伏(PV)电池以改善电性能。但是,与太阳能集热器相比,这会导致热组件的性能下降。非晶硅(a-Si:H)的低温度系数使PV电池能够在高温下运行,这是共生PVT系统的潜在候选者。 a-Si:H PV的基本挑战是光诱导的降解,称为StaeblerWronski效应(SWE)。幸运的是,如果电池退火,SWE是可逆的,并且a-Si:H PV效率可以恢复到其初始状态。因此,存在将a-Si:H直接沉积在太阳能吸收板上的机会,在该板上电池可能会达到退火所需的高温。在这项研究中,通过实验探索了这种机会。首先将a-Si:H PV电池在100°C下以12 h周期退火1 h,在剩余时间内将其在50°C下降解,以模拟PVT系统停滞1 h一天一次。当比较在正常的50°C降解后稳定的电池后,发现与仅在50°C降解的电池相比,该退火序列可增加10.6%的能量。

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