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Development and Application of Electroluminescence Imaging for CdS/CdTe Characterization

机译:CDS / CDTE表征电致发光成像的开发和应用

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A technique for spatially resolved optical characterization of CdS/CdTe thin film solar cells has been developed using electroluminescence (EL). In EL, excess minority carriers are injected via forward biasing. Light produced in radiative carrier recombination is collected with a CCD camera. Because EL intensity depends upon radiative vs. non-radiative recombination lifetimes, EL provides insight into material quality. Spatial resolution is a key benefit of EL as it provides insight into the non-uniformities of polycrystalline CdTe. At high magnification the resolution is diffraction limited, but coarser measurements of up to several millimeters in range may also be made. Non-uniformities in emission have been observed throughout this range. Further benefits of EL as a characterization technique are as follows: EL probes the region of most interest, namely the CdTe near the main junction. Also, it is observable at room temperature and data acquisition is fast. Finally, EL is observable at very low carrier injection rates, comparable to short circuit current. (Though more structure is often revealed at higher injection rates.) This low injection means that EL can be a non-destructive probe. This fact, along with the aforementioned ease of observation, means that EL could possibly be used for quality control and in situ testing of modules. Data gathered from CdS/CdTe cells from various institutions deposited using different methods such as close spaced sublimation, vapor transport, and sputtering are presented. In addition to changes in deposition technique, changes in processing parameters were observed to affect EL emission. Furthermore, overall EL emission decreased noticeably with stress at various biases and elevated temperature, with non-uniformity increasing in many cases. Changes in EL become apparent before changes in parameters acquired with standard current-voltage measurements, suggesting that this technique can be used as an early indicator for degrading cells. Finally, some dramatic changes in EL with stress suggest highly non-uniform degradation of the back contact.
机译:已经使用电致发光(EL)开发了用于CDS / CDTE薄膜太阳能电池的空间分辨光学表征的技术。在EL中,通过正向偏置注入过量的少数载体。用CCD相机收集辐射载体重组中产生的光。因为EL强度取决于辐射与非辐射重组寿命,所以EL提供对材料质量的洞察力。空间分辨率是EL的关键益处,因为它提供了对多晶CDTE的非均匀性的洞察力。在高放大率下,分辨率是衍射限制,但也可以制造较大的范围内的较大量的测量值。在整个范围内观察到排放中的不均匀性。 EL作为表征技术的进一步益处如下:EL探测大多数兴趣的区域,即主结的CDTE。此外,在室温下可观察到,数据采集快速。最后,EL在非常低的载流子喷射速率下可观察到,与短路电流相当。 (尽管在较高的注射率下通常透露了更多的结构。)这种低注入意味着EL可以是非破坏性探针。这一事实以及上述易于观察,意味着EL可能用于质量控制和模块的原位测试。从使用不同方法沉积的各种机构中从CDS / CDTE细胞收集的数据被呈现出诸如近距离的升华,蒸汽传输和溅射。除了沉积技术的变化之外,观察到处理参数的变化以影响EL发射。此外,总体的EL发射明显降低,在各种偏差和升高的温度下,在许多情况下具有不均匀性的升高。在使用标准电流 - 电压测量的参数的变化之前,EL的变化变得显而易见,表明该技术可以用作降解细胞的早期指示器。最后,el的一些巨大变化具有应力建议背面接触的高度均匀劣化。

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