Ultrathin oxygen deficient SnOx films as electron extraction layers for perovskite solar modules

被引:0
|
作者
Lee, Jin-Won [1 ]
Adu, Joshua Sraku [1 ,2 ]
Agbenyeke, Raphael E. [3 ]
Laverock, Jude [3 ]
Sheppard, Alice [3 ]
Park, Eunyoung [1 ]
Kim, Youngwoong [1 ,4 ]
Hong, Soonil [1 ]
Jeon, Nam Joong [1 ]
Fermin, David J. [3 ]
Park, Helen Hejin [1 ,2 ]
机构
[1] Korea Res Inst Chem Technol KRICT, Adv Mat Div, Daejeon 34114, South Korea
[2] Korea Natl Univ Sci & Technol UST, Dept Adv Mat & Chem Engn, Adv Mat & Chem Engn, Daejeon 34113, South Korea
[3] Univ Bristol, Sch Chem, Bristol BS8 1TL, England
[4] Korea Inst Ind Technol KITECH, Green & Sustainable Mat R&D Dept, Cheonan 31056, Chungcheongnam, South Korea
基金
新加坡国家研究基金会; 英国工程与自然科学研究理事会;
关键词
CELLS; DEPOSITION;
D O I
10.1039/d4ta06871h
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The design of high-quality junctions capable of efficiently extracting carriers from perovskite-based absorbers is key in the transition from lab-scale devices to modules. In the so-called n-i-p configuration, SnO2 nanoparticle (np-SnO2) films have been thoroughly investigated as electron transporting layers (ETLs) in view of their good optimal band alignment, chemical stability and appropriate surface chemistry for nucleating high-quality perovskite films. In this report, we show for the first time that np-SnO2 films are characterized by a heterogeneous surface electronic landscape and introducing quasi-monoenergetic conformal layers between the transparent conducting oxide (TCO) and the np-SnO2 film can lead to significant improvement in perovskite solar modules. These SnOx extraction layers are developed using a highly innovative plasma-modified atomic layer deposition (PMALD) tool, which enables tuning the Sn : O ratio, conductivity, and effective work function. Energy-filtered photoemission electron microscopy (EF-PEEM) shows a remarkably homogeneous surface electronic landscape of PMALD SnOx. We examine the impact of PMALD-SnOx in an n-i-p device configuration, with poly(triarylamine) (PTAA) as the hole transporting layer, which leads to the improvement in perovskite module power conversion efficiency from 17.9% to 20.1%, with an active area of 23.2 cm2. Furthermore, the devices retained 92% of their initial efficiency for 2700 h at 85 degrees C and 85% relative humidity and 96% for 1000 h under continuous illumination with maximum power point tracking.
引用
收藏
页码:4100 / 4106
页数:8
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