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Efficient, Low-Cost Organic-Inorganic Hybrid Solar Cells via Materials, Interface, and Device Structure Design.

机译:通过材料,界面和器件结构设计实现高效,低成本的有机-无机混合太阳能电池。

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摘要

The concept of the inter-mixing of donor-acceptor materials in a single layer revolutionized the solar cell technology. The commonly used materials are lack of strong absorption in the near-infrared region. Pyrite FeS 2 is a promising material because of its high absorption in the range of 300--1100 nm. In addition, it is abundant, non-toxic and has long term stability as well as the extraordinary electrical properties. Pyrite FeS2 hierarchical microparticles consisting of cubic crystals with defined {100} faceted textures were synthesized using a hydrothermal method with the presence of ethylenediamine and polyvinylpyrrolidone. Short, branched, and chromosome-like pyrite FeS2 rods with a diameter of 10 nm and a length of 20--30 nm as well as quasi-cubic NC agglomerates with a size of 200 nm were obtained by hot injection methods. The growth of anisotropic iron pyrite nanocrystals (NCs) follows the oriented attachment mechanism at the early growth stage of the hot injection synthesis followed by Ostwald ripening mechanism as time progresses.;In the fabrication of inverted organic-inorganic hybrid solar cells with pyrite NCs, we realize an effective hole transport layer (HTL) improves the performance of the solar cells and provides additional protection against water and oxygen. The HTL serves as a selective contact by extracting holes while concurrently blocking electrons, thereby reducing dark (leakage) current and enhancing the open circuit voltage (VOC), short circuit current (JSC), and fill factor (FF). The inverted hybrid CdSe -polymer solar cells with the poly (3, 4-ethylenedioxythiophene)-poly (styrenesulfonate) (PEDOT:PSS)/MoO3 dual HTLs showed superior performance over those with a single HTL of PEDOT:PSS or MoO3. The enhancement in electron transport in the active layer, the improvement in hole extraction at active layer/anode interface as well as a prevention of leakage current account for the enhancement in the efficiency of the solar cells with dual HTLs.;In order to achieve an efficient charge separation and correlates the film morphology and grain size with the device performance. A two-step solution process with thermal plus solvent vapor-assisted thermal annealing was developed for the fabrication of binary Pb-Sn triiodine perovskite films. This was an effective method to make films with large and smooth grains. Using this new process to control and manipulate film morphology, grain size, and especially the distribution of metal cations in binary metal perovskite layers, opens an avenue to grow perovskite materials with desired properties to enhance device performance.
机译:供体-受体材料在单层中相互混合的概念彻底改变了太阳能电池技术。常用的材料在近红外区域缺乏强吸收。黄铁矿FeS 2是一种有前途的材料,因为它在300--1100 nm范围内具有高吸收率。此外,它丰富,无毒,具有长期稳定性以及非凡的电性能。在乙二胺和聚乙烯吡咯烷酮的存在下,使用水热法合成了由具有定义的{100}多面纹理的立方晶体组成的黄铁矿FeS2分层微粒。通过热注射方法获得了直径为10 nm,长度为20--30 nm的短的,分支的和染色体样的黄铁矿FeS2棒以及大小为200 nm的准立方NC附聚物。各向异性黄铁矿纳米晶体(NCs)的生长遵循热注射合成早期生长阶段的定向附着机制,随后随着时间的推移奥斯特瓦尔德(Ostwald)成熟机制的发展。我们意识到有效的空穴传输层(HTL)可以改善太阳能电池的性能,并提供额外的防水和防氧气保护。 HTL通过提取空穴同时阻止电子,从而起到选择性接触的作用,从而减少了暗(漏)电流并增强了开路电压(VOC),短路电流(JSC)和填充系数(FF)。具有聚(3,4-乙撑二氧噻吩)-聚(苯乙烯磺酸盐)(PEDOT:PSS)/ MoO3双HTL的倒置杂化CdSe聚合物太阳能电池显示出优于具有单个PTLOT:PSS或MoO3的HTL的性能。有源层中电子传输的增强,有源层/阳极界面处空穴的提取的改进以及泄漏电流的防止,说明了具有双HTL的太阳能电池效率的提高。高效的电荷分离,并将膜的形态和晶粒尺寸与器件性能相关联。开发了具有热加溶剂蒸汽辅助热退火的两步溶液法,用于制备二元Pb-Sn三碘钙钛矿型薄膜。这是制造具有大而光滑晶粒的薄膜的有效方法。使用这种新工艺来控制和控制膜的形态,晶粒尺寸,尤其是二元金属钙钛矿层中金属阳离子的分布,为生长具有所需性能以增强器件性能的钙钛矿材料开辟了一条途径。

著录项

  • 作者

    Zhu, Leize.;

  • 作者单位

    University of Washington.;

  • 授予单位 University of Washington.;
  • 学科 Chemical engineering.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 187 p.
  • 总页数 187
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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