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Positional irradiance measurement: characterization of spectrum-splitting and concentrating optics for photovoltaics

机译:位置辐照度测量:用于光伏的分光和聚光光学器件的表征

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摘要

Multijunction photovoltaics enable significantly improved efficiency over their single junction analogues by mitigating unabsorbed sub-bandgap photons and voltage loss to carrier thermalization. Lateral spectrum-splitting configurations promise further increased efficiency through relaxation of the lattice- and current-matching requirements of monolithic stacks, albeit at the cost of increased optical and electrical complexity. Consequently, in order to achieve an effective spectrum-splitting photovoltaic configuration it is essential that all optical losses and photon misallocation be characterized and subsequently minimized. We have developed a characterization system that enables us to map the spatial, spectral, and angular distribution of illumination incident on the subcell reception plane or emerging from any subset of the concentrating and splitting optics. This positional irradiance measurement system (PIMS) comprises four motorized stages assembled in an X-Z-RY configuration with three linear degrees of freedom and one rotational degree of freedom, on which we mount an optical fiber connected to a set of spectrometers covering the solar spectrum from 280-1700 nm. In combination with a xenon arc lamp solar simulator with a divergence half angle of 1.3 degrees, we are able to characterize our optics across the full spectrum of our photovoltaic subcells with close agreement to outdoor conditions. We have used this tool to spectrally characterize holographic diffraction efficiency versus diffraction angle; multilayer dielectric filter transmission and reflection efficiency versus filter incidence angle; and aspheric lens chromatic aberration versus optic-to-receiver separation distance. These examples illustrate the versatility of the PIMS in characterizing optical performance relevant to both spectrum-splitting and traditional multijunction photovoltaics. © (2014) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
机译:多结光伏器件通过减轻未吸收的子带隙光子和因载流子热化引起的电压损耗,使其单结类似物的效率大大提高。横向频谱拆分配置有望通过放宽单片堆栈的晶格和电流匹配要求而进一步提高效率,尽管以增加光学和电气复杂性为代价。因此,为了获得有效的光谱分离光伏配置,必须对所有的光损耗和光子错配进行表征,然后将其最小化。我们已经开发了一种表征系统,使我们能够绘制入射在子细胞接收平面上或从集中和分离光学器件的任何子集中出现的照明的空间,光谱和角度分布。该位置辐照度测量系统(PIMS)包括四个以XZ-RY配置配置的电动平台,具有三个线性自由度和一个旋转自由度,我们在其上安装了连接到一组光谱仪的光纤,这些光谱仪覆盖了来自280-1700 nm。与发散半角为1.3度的氙弧灯太阳能模拟器相结合,我们能够在与室外条件密切相关的整个光伏子电池光谱范围内表征光学特性。我们已经使用该工具对全息衍射效率与衍射角的关系进行了光谱表征。多层介质滤波器的透射和反射效率与滤波器入射角的关系;非球面透镜色差与光接收器分离距离的关系。这些示例说明了PIMS在表征与光谱分离和传统多结光伏技术相关的光学性能方面的多功能性。 ©(2014)版权所有,光电仪器工程师协会(SPIE)。摘要的下载仅允许个人使用。

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