添加剂和表面钝化对钙钛矿太阳能电池性能的影响

IF 3.6 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Materials for Renewable and Sustainable Energy Pub Date : 2021-12-27 DOI:10.1007/s40243-021-00206-9
Samuel Abicho, Bekele Hailegnaw, Getachew Adam Workneh, Teketel Yohannes
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引用次数: 6

摘要

有机-无机钙钛矿太阳能电池(OIPSCs)在很短的时间内将功率转换效率(PCE)提高到25%以上,并有望达到单结太阳能电池的理论PCE极限33%,这使得有机-无机钙钛矿太阳能电池(OIPSCs)受到科学界和工业界的广泛关注。在刚性或柔性基材上用前驱体溶液生产OIPSCs的简单性使它们对低成本的卷对卷生产工艺更具吸引力。虽然OIPSCs通过简单的溶液处理方法显示出较高的PCE,但仍存在未解决的问题,同时正在尝试将其商业化。主要问题之一是OIPSCs在电荷传输层和/或电极界面上的光活性层在长时间暴露于湿气、热和辐射下时的不稳定性。为了获得匹配的PCE和稳定性,OIPSCs中组分的分子工程和界面工程等多种技术被应用。此外,近年来,添加剂、溶剂、表面钝化和结构调整的工程已经发展到减少有机-无机钙钛矿薄膜表面和/或界面的缺陷和大晶界。在这篇综述中,我们展示了最近开发的添加剂和钝化策略,这些策略的重点是同时提高PCE和长期稳定性。
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Role of additives and surface passivation on the performance of perovskite solar cells

Outstanding improvement in power conversion efficiency (PCE) over 25% in a very short period and promising research developments to reach the theoretical PCE limit of single junction solar cells, 33%, enables organic–inorganic perovskite solar cells (OIPSCs) to gain much attention in the scientific and industrial community. The simplicity of production of OIPSCs from precursor solution either on rigid or flexible substrates makes them even more attractive for low-cost roll-to-roll production processes. Though OIPSCs show as such higher PCE with simple solution processing methods, there are still unresolved issues, while attempts are made to commercialize these solar cells. Among the major problems is the instability of the photoactive layer of OIPSCs at the interface of the charge transport layers and /or electrodes during prolonged exposure to moisture, heat and radiation. To achieve matched PCE and stability, several techniques such as molecular and interfacial engineering of components in OIPSCs have been applied. Moreover, in recent times, engineering on additives, solvents, surface passivation, and structural tuning have been developed to reduce defects and large grain boundaries from the surface and/or interface of organic–inorganic perovskite films. Under this review, we have shown recently developed additives and passivation strategies, which are strongly focused to enhance PCE and long-term stability simultaneously.

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来源期刊
Materials for Renewable and Sustainable Energy
Materials for Renewable and Sustainable Energy MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
7.90
自引率
2.20%
发文量
8
审稿时长
13 weeks
期刊介绍: Energy is the single most valuable resource for human activity and the basis for all human progress. Materials play a key role in enabling technologies that can offer promising solutions to achieve renewable and sustainable energy pathways for the future. Materials for Renewable and Sustainable Energy has been established to be the world''s foremost interdisciplinary forum for publication of research on all aspects of the study of materials for the deployment of renewable and sustainable energy technologies. The journal covers experimental and theoretical aspects of materials and prototype devices for sustainable energy conversion, storage, and saving, together with materials needed for renewable fuel production. It publishes reviews, original research articles, rapid communications, and perspectives. All manuscripts are peer-reviewed for scientific quality. Topics include: 1. MATERIALS for renewable energy storage and conversion: Batteries, Supercapacitors, Fuel cells, Hydrogen storage, and Photovoltaics and solar cells. 2. MATERIALS for renewable and sustainable fuel production: Hydrogen production and fuel generation from renewables (catalysis), Solar-driven reactions to hydrogen and fuels from renewables (photocatalysis), Biofuels, and Carbon dioxide sequestration and conversion. 3. MATERIALS for energy saving: Thermoelectrics, Novel illumination sources for efficient lighting, and Energy saving in buildings. 4. MATERIALS modeling and theoretical aspects. 5. Advanced characterization techniques of MATERIALS Materials for Renewable and Sustainable Energy is committed to upholding the integrity of the scientific record. As a member of the Committee on Publication Ethics (COPE) the journal will follow the COPE guidelines on how to deal with potential acts of misconduct. Authors should refrain from misrepresenting research results which could damage the trust in the journal and ultimately the entire scientific endeavor. Maintaining integrity of the research and its presentation can be achieved by following the rules of good scientific practice as detailed here: https://www.springer.com/us/editorial-policies
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