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Recombination Suppression in PbS Quantum Dot Heterojunction Solar Cells by Energy-Level Alignment in the Quantum Dot Active Layers

机译:通过量子点活动层中的能量水平对准PBS量子点异质结太阳能电池的重组抑制

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摘要

Using spatial energy-level gradient engineering with quantum dots (QDs) of different sizes to increase the generated carrier collection at the junction of a QD heterojunction solar cell (QDHSC) is a hopeful route for improving the energy-conversion efficiency. However, the results of current related research have shown that a variable band-gap structure in a QDHSC will create an appreciable increase, not in the illumination current density, but rather in the fill factor. In addition, there are a lack of studies on the mechanism of the effect of these graded structures on the photovoltaic performance of QDHSCs. This study presents the development of air atmosphere solution-processed TiO2/PbS QDs/Au QDHSCs by engineering the energy-level alignment (ELA) of the active layer via the use of a sorted order of differently sized QD layers (four QD sizes). In comparison to the ungraded device (without the ELA), the optimized graded architecture (containing the ELA) solar cells exhibited a great increase (21.4%) in short-circuit current density (J(sc)). As a result, a J(sc) value greater than 30 mA/cm(2) has been realized in planar, thinner absorption layer (similar to 300 nm) PbS QDHSCs, and the open-circuit voltage (V-oc) and power-conversion efficiency (PCE) were also improved. Through characterization by the light intensity dependences of the J(sc) and V-oc and transient photovoltage decay, we find that (i) the ELA structure, serving as an electron-blocking layer, reduces the interfacial recombination at the PbS/anode interface, and (ii) the ELA structure can drive more carriers toward the desirable collection electrode, and the additional carriers can fill the trap states, reducing the trap assisted recombination in the PbS QDHSCs. This work has clearly elucidated the mechanism of the recombination suppression in the graded QDHSCs and demonstrated the effects of ELA structure on the improvement of J(sc). The charge recombination mechanisms characterized in this work would be able to shed light on further improvements of QDHSCs, which could even benefit other types of solar cells.
机译:使用不同尺寸的空间能级梯度工程,不同尺寸的量子点(QDS)来增加QD异质结太阳能电池(QDHSC)的连接处的产生的载体收集是提高能量转换效率的有希望的路线。然而,当前相关研究的结果表明,QDHSC中的可变带间隙结构将产生明显的增加,而不是在照明电流密度中,而是在填充因子中。此外,还有于这些分级结构对QDHSCs光伏性能的影响的机制缺乏研究。本研究通过使用不同尺寸的QD层(四个QD尺寸)的分拣顺序,通过使用不同尺寸的QD层(四个QD)的分拣顺序来设计空气气氛处理的TiO2 / PBS QDS / AU QDHSCs的开发。与未分发的装置(没有ELA)相比,优化的分级架构(包含ELA)太阳能电池在短路电流密度(J(SC))中表现出大幅增加(21.4%)。结果,在平面,更薄的吸收层(类似于300nm)PBS QDHSCS和开路电压(V-OC)和功率的平面中实现了大于30mA / cm(2)的j(sc)值。 - 转化效率(PCE)也得到改善。通过表征J(SC)和V-OC和瞬态光伏衰减,我们发现(i)用作电子阻挡层的ELA结构降低了PBS /阳极界面处的界面重组(ii)(ii)ELA结构可以将更多的载体朝向所需的收集电极驱动,并且附加载体可以填充捕集状态,减少PBS QDHSC中的陷阱辅助重组。该工作明确阐明了分级QDHSCs中重组抑制的机制,并证明了ELA结构对J(SC)的改善的影响。在该工作中表征的电荷重组机制将能够在进一步改善QDHSC的进一步改善,这甚至可以有利于其他类型的太阳能电池。

著录项

  • 来源
    《ACS applied materials & interfaces》 |2018年第31期|共11页
  • 作者单位

    Univ Electrocommun Grad Sch Informat &

    Engn 1-5-1 Chofugaoka Chofu Tokyo 1828585 Japan;

    Univ Electrocommun Grad Sch Informat &

    Engn 1-5-1 Chofugaoka Chofu Tokyo 1828585 Japan;

    Univ Electrocommun Grad Sch Informat &

    Engn 1-5-1 Chofugaoka Chofu Tokyo 1828585 Japan;

    Univ Electrocommun Grad Sch Informat &

    Engn 1-5-1 Chofugaoka Chofu Tokyo 1828585 Japan;

    Univ Electrocommun Grad Sch Informat &

    Engn 1-5-1 Chofugaoka Chofu Tokyo 1828585 Japan;

    Kyushu Inst Technol Grad Sch Life Sci &

    Syst Engn Wakamatsu Ku 2-4 Hibikino Kitakyushu Fukuoka 8080196 Japan;

    Kyushu Inst Technol Grad Sch Life Sci &

    Syst Engn Wakamatsu Ku 2-4 Hibikino Kitakyushu Fukuoka 8080196 Japan;

    Univ Electrocommun Grad Sch Informat &

    Engn 1-5-1 Chofugaoka Chofu Tokyo 1828585 Japan;

    Beijing Univ Civil Engn &

    Architecture Beijing Engn Res Ctr Sustainable Energy &

    Bldg 15 Yongyuan Rd Beijing 102616 Peoples R China;

    Univ Electrocommun Grad Sch Informat &

    Engn 1-5-1 Chofugaoka Chofu Tokyo 1828585 Japan;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    lead sulfide; quantum dot heterojunction solar cells; energy-level alignment; recombination mechanism; recombination suppression;

    机译:硫化铅;量子点异质结太阳能电池;能量水平对准;重组机构;重组抑制;

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