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Improving CNT-Si solar cells by metal chloride-to-oxide transformation

机译:通过金属氯化氧化物转化改善CNT-Si太阳能电池

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摘要

Transitional metal oxides (TMOs) are important functional materials in silicon-based and thin-film optoelectronics. Here, TMOs are applied in carbon nanotube (CNT)-Si solar cells by spin-coating solutions of metal chlorides that undergo favorable transformation in ambient conditions. An unconventional change in solar cell behavior is observed after coating two particular chlorides (MoCl5 and WCl6, respectively), characterized by an initial severe degradation followed by gradual recovery and then well surpassing the original performance. Detailed analysis reveals that the formation of corresponding oxides (MoO3 and WO3) enables two primary functions on both CNTs (p-type doping) and Si (inducing inversion layer), leading to significant improvement in open-circuit voltage and fill factor, with power conversion efficiencies up to 13.0% (MoO3) and 13.4% (WO3). Further combining with other chlorides to increase the short-circuit current, ultimate cells efficiencies achieve >16% with over 90% retention after 24 h, which are among the highest stable efficiencies reported for CNT-Si solar cells. The transformation of functional layers as demonstrated here has profound influence on the device characteristics, and represents a potential strategy in low-cost manufacturing of next-generation high efficiency photovoltaics.
机译:过渡金属氧化物(TMOS)是硅基和薄膜光电子中的重要功能材料。这里,TMO在碳纳米管(CNT)-SI太阳能电池中,通过在环境条件下经过有利的转化进行良好的变化。在涂覆两种特定的氯化物(MOCL5和WCL6)后观察到太阳能电池行为的非常规变化,其特征在于初始严重降解,然后逐渐恢复,然后良好地超过原始性能。具体实施方式揭示了相应氧化物(MOO3和WO3)的形成能够在CNT(P型掺杂)和Si(诱导转换层)上进行两种主要功能,导致开路电压和填充因子的显着改善转化效率高达13.0%(MOO3)和13.4%(WO3)。进一步与其他氯化物组合以增加短路电流,最终的细胞效率达到> 16%,24小时后滞留超过90%,这是CNT-Si太阳能电池报道的最高稳定效率。这里证明的功能层的变换对器件特性影响了深刻的影响,并且代表了下一代高效光伏的低成本制造的潜在策略。

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