Jonathan Parion, Santhosh Ramesh, Sownder Subramaniam, Henk Vrielinck, Filip Duerinckx, Hariharsudan Sivaramakrishnan Radhakrishnan, Jef Poortmans, Johan Lauwaert, Bart Vermang
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引用次数: 0
摘要
我们提出了一种多方面的表征方法,旨在建立纳米级电特性与宏观器件特性之间的联系。电流-电压(I-V)测量与导纳光谱法(AS)和深层瞬态光谱法(DLTS)相结合,用于分析与电荷相关的性能损失,并通过飞行时间二次离子质谱法完成对器件中离子运动的理解。这被应用于对过氧化物太阳能电池表面处理的研究,其中采用了几种策略来改善带排列、过氧化物晶粒生长和化学钝化。表面处理后,开路电压(Voc)和填充因子分别提高了 90 mV 和 11%,绝对效率提高了 4%。AS 测量结果与集合元素模型相结合,排除了传输层对性能改善的影响,而是指向了减少包晶体中的离子电阻。对 DLTS 响应的分析得出了 0.41 eV 的活化能,这很可能与 AS 发现的离子机制相同。最后,这两种技术都表明,表面处理的主要作用是减少与离子有关的电荷载流子重组。
Multifaceted Characterization Methodology for Understanding Nonidealities in Perovskite Solar Cells: A Passivation Case Study
A multifaceted characterization approach is proposed, aiming to establish a link between nanoscale electrical properties and macroscale device characteristics. Current–voltage (I–V) measurements are combined with admittance spectroscopy (AS) and deep-level transient spectroscopy (DLTS) for the analysis of charge-related performance losses with time-of-flight secondary-ion mass spectrometry to complete the understanding of ionic motion in the device. This is applied to the study of surface treatment in perovskite solar cells, which implements several strategies to improve band alignment, perovskite grain growth, and chemical passivation. An increase of both open-circuit voltage (Voc) and fill factor of respectively 90 mV and 11% is shown after surface treatment, with an absolute efficiency increase of 4%. AS measurements, coupled with a lumped elements model, rule out the impact of transport layers as the origin of the performance improvement, rather pointing toward a reduction in ionic resistance in the perovskite bulk. Analysis of the DLTS response yields an activation energy of 0.41 eV, which is likely related to the same ionic mechanism discovered with AS. Finally, both of these techniques enable to show that the surface treatment main contribution is to reduce ion-related recombination of charge carriers.
Solar RRLPhysics and Astronomy-Atomic and Molecular Physics, and Optics
CiteScore
12.10
自引率
6.30%
发文量
460
期刊介绍:
Solar RRL, formerly known as Rapid Research Letters, has evolved to embrace a broader and more encompassing format. We publish Research Articles and Reviews covering all facets of solar energy conversion. This includes, but is not limited to, photovoltaics and solar cells (both established and emerging systems), as well as the development, characterization, and optimization of materials and devices. Additionally, we cover topics such as photovoltaic modules and systems, their installation and deployment, photocatalysis, solar fuels, photothermal and photoelectrochemical solar energy conversion, energy distribution, grid issues, and other relevant aspects. Join us in exploring the latest advancements in solar energy conversion research.