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低温处理的板钛矿基TiO异质结增强平面钙钛矿太阳能电池性能。

Low-Temperature-Processed Brookite-Based TiO Heterophase Junction Enhances Performance of Planar Perovskite Solar Cells.

作者信息

Shahiduzzaman Md, Visal Sem, Kuniyoshi Mizuki, Kaneko Tetsuya, Umezu Shinjiro, Katsumata Tetsuhiro, Iwamori Satoru, Kakihana Masato, Taima Tetsuya, Isomura Masao, Tomita Koji

机构信息

Nanomaterials Research Institute , Kanazawa University , Kanazawa 920-1192 , Japan.

Department of Modern Mechanical Engineering , Waseda University , Tokyo 169-8555 , Japan.

出版信息

Nano Lett. 2019 Jan 9;19(1):598-604. doi: 10.1021/acs.nanolett.8b04744. Epub 2018 Dec 26.

Abstract

In the design of electron-transport layers (ETLs) to enhance the efficiency of planar perovskite solar cells (PSCs), facile electron extraction and transport are important features. Here, we consider the effects of different titanium oxide (TiO) polymorphs, anatase and brookite. We design and fabricate high-phase-purity, single-crystalline, highly conductive, and low-temperature (<180 °C)-processed brookite-based TiO heterophase junctions on fluorine-doped tin oxide (FTO) as the substrate. We test and compare single-phase anatase (A) and brookite (B) and heterophase anatase-brookite (AB) and brookite-anatase (BA) as ETLs in PSCs. The power-conversion efficiencies (PCEs) of PSCs with low-temperature-processed single-layer FTO-B as the ETL were as high as 14.92%, which is the highest reported efficiency of FTO-B-based single-layer PSC. This implies that FTO-B serves as an active phase and can be a potential candidate as an n-type ETL scaffold in planar PSCs. Moreover, the surface of highly crystalline brookite TiO exhibits a tendency toward interparticle necking, leading to the formation of compact scaffolds. Furthermore, PSCs with heterophase junction FTO-AB ETLs exhibited PCEs as high as 16.82%, which is superior to those of PSCs with single-phase anatase (FTO-A) and brookite (FTO-B) as the ETLs (13.86% and 14.92%, respectively). In addition, the PSCs with FTO-AB exhibited improved efficiency and decreased hysteresis compared with those with FTO-BA (13.45%) due to the suitable band alignment with the perovskite layer, which resulted in superior photogenerated charge-carrier extraction and reduced charge accumulation at the interface between the heterophase junction and perovskite. Thus, the present work presents an effective strategy by which to develop heterophase junction ETLs and manipulate the interfacial energy band to further improve the performance of planar PSCs and enable the clean and eco-friendly fabrication of low-cost mass production.

摘要

在设计用于提高平面钙钛矿太阳能电池(PSC)效率的电子传输层(ETL)时,便捷的电子提取和传输是重要特性。在此,我们考虑了不同氧化钛(TiO)多晶型物锐钛矿型和板钛矿型的影响。我们在以氟掺杂氧化锡(FTO)为基底上设计并制备了高相纯度、单晶、高导电性且低温(<180°C)处理的基于板钛矿型TiO的异质结。我们测试并比较了单相锐钛矿型(A)和板钛矿型(B)以及异相锐钛矿 - 板钛矿型(AB)和板钛矿 - 锐钛矿型(BA)作为PSC中的ETL。以低温处理的单层FTO - B作为ETL的PSC的功率转换效率(PCE)高达14.92%,这是基于FTO - B的单层PSC所报道的最高效率。这意味着FTO - B作为一个活性相,并且可以成为平面PSC中n型ETL支架的潜在候选者。此外,高度结晶的板钛矿型TiO表面呈现出颗粒间颈缩的趋势,导致形成致密的支架。此外,具有异质结FTO - AB ETL的PSC的PCE高达16.82%,优于以单相锐钛矿型(FTO - A)和板钛矿型(FTO - B)作为ETL的PSC(分别为13. + 86%和14.92%)。此外,与具有FTO - BA(+ 3.45%)的PSC相比,具有FTO - AB的PSC由于与钙钛矿层具有合适的能带排列,表现出更高的效率和更低的滞后现象,这导致了优异的光生电荷载流子提取以及异质结与钙钛矿之间界面处电荷积累的减少。因此,本工作提出了一种有效的策略,通过开发异质结ETL并操纵界面能带,以进一步提高平面PSC的性能,并实现低成本大规模生产的清洁且环保的制造。

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