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The Effects of Absorption and Recombination on Quantum Dot Multijunction Solar Cell Efficiency

机译:吸收和复合对量子点多结太阳能电池效率的影响

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摘要

The key characteristics of quantum dot (QD)-enhanced multijunction solar cells (MJSC) are explored theoretically by focusing on the generation and recombination rates throughout the QD layers in the middle subcell. The quantum dots are modeled using an effective medium to describe light absorption, confinement, and recombination properties. We report an 8% increase in the short-circuit current density accompanied by a 3% drop in an open-circuit voltage for a QD- enhanced MJSC at 1 sun illumination (1 kW/m $^{2}$) compared with a control MJSC without QD. The drop in an open-circuit voltage is due in part to the increased recombination rates in the depletion region, decreased carrier lifetimes in the QDs, and the increased recombination rates resulting from carrier escape and capture. Overall, these contribute to an absolute increase in efficiency of over 1% for the studied QD-enhanced MJSC design for a QD density of 125 QD/μm $^{2}$.
机译:通过关注中间子电池中整个QD层的生成和复合速率,从理论上探索了量子点(QD)增强型多结太阳能电池(MJSC)的关键特性。使用有效的介质对量子点进行建模,以描述光的吸收,限制和重组特性。我们报告了在1种阳光照射下,QD增强型MJSC的短路电流密度增加了8%,同时开路电压下降了3%(1 kW / m <公式> Notation =“ TeX”> $ ^ {2} $ )与没有QD的对照MJSC进行比较。开路电压的下降部分归因于耗尽区中复合率的提高,量子点中载流子寿命的降低以及载流子逸出和俘获导致复合率的提高。总的来说,对于QD密度为125 QD /μm的QD增强型MJSC设计,这些绝对有助于效率绝对提高1%以上 $ ^ { 2} $

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