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A facile approach for enhancing device performance of excitonic solar cells with an innovative SnO2/TCNE electron transport layer

机译:具有创新的SnO2 / Tcne电子传输层的激发太阳能电池装置性能的便利方法

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摘要

The spread of the Internet of things created the need for huge amounts of off-grid energy sources for tens of billions of electronic devices with low power consumption for indoor applications. Excitonic solar cells may provide a better solution as compared with other solar cells due to their advantages such as low-cost, large-area module, and fabrication by solution printing and coating techniques. However, the organic solar cells (OSCs) or perovskite solar cells (PSCs) should have a low energy loss, suitable absorption spectrum, and minimum trap mediated charge recombination for its proper commercialization. Interface engineering is one of the ways of achieving better performance for these devices. Herein, we report a facile and effective strategy for interfacial modulation to achieve the improved performance of inverted bulk heterojunction (BHJ) solar cells with a solution-processable SnO2 electron transport layer (ETL) modified by an organic small molecule tetracyanoethylene (TCNE). We can say that a few nano-meter thin film of TCNE supports to reduce the energy barrier of SnO2, resulting in the efficient extraction and transport of negative charge carriers toward the cathode. The TCNE also passivates the surface defects of SnO2 and hence decreases the charge recombination rate for iOSCs. Furthermore, it brings the better interfacial contact between SnO2 and BHJ blend in which the polymer PTB7 and fullerene PC71BM are the donor and acceptor, respectively, showing average power conversion efficiencies of ∼4.58%, ∼4.98%, and ∼2.95% with varying concentrations of TCNE (0.5 mg/ml, 1 mg/ml, and 2 mg/ml), respectively, in methanol, on top of SnO2, as ETLs, which are comparably better than that of pristine SnO2 (3.28%). We assumed that the TCNE modified SnO2 method is a potent and easy way to get efficient inverted BHJ solar cells with higher efficiency and may also be an appropriate alternative for other organic semiconducting devices where an ETL is required, such as organic light-emitting diodes and PSCs.
机译:东西互联网的蔓延产生了大量的偏离电网能源,用于几十亿电子设备,具有低功耗的室内应用。由于它们的优点是诸如低成本,大面积模块和通过溶液印刷和涂覆技术的制造而与其他太阳能电池相比,激发器太阳能电池可以提供更好的解决方案。然而,有机太阳能电池(OSCs)或钙钛矿太阳能电池(PSCs)应具有低能量损失,合适的吸收光谱和最小捕集介导的电荷重组,用于其适当的商业化。接口工程是实现这些设备更好性能的方法之一。在此,我们报告了用于界面调节的容易和有效的策略,以实现具有由有机小分子四环乙烯(TCNE)改性的溶液可加工的SnO2电子传输层(EtL)的改善的倒置载体异质结(BHJ)太阳能电池的性能。我们可以说,少数纳米米薄膜的TCNE薄膜支撑,以减小SnO2的能量屏障,导致负电荷载体朝向阴极的有效提取和运输。 TCNE还钝化了SnO2的表面缺陷,因此降低了IOSC的电荷重组率。此外,它带来了SnO2和BHJ混合物之间的更好的界面接触,其中聚合物PTB7和富勒烯PC71BM分别是供体和受体,显示平均功率转化效率为〜4.58%,〜4.98%,〜2.95%,浓度不同在SnO 2的顶部分别在SnO 2上的TCNE(0.5mg / ml,1mg / ml和2mg / ml),作为EtL,其比原始SnO2(3.28%)更好。我们假设TCNE改性的SnO2方法是一种有效且简便的方法,以获得更高效率的有效倒立的BHJ太阳能电池,也可以是所需ETL等其他有机半导体装置的适当替代方案,例如有机发光二极管和PSC。

著录项

  • 作者

    Md. Aatif; J. P. Tiwari;

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  • 年度 2020
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  • 原文格式 PDF
  • 正文语种 eng
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