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A First Principles Investigation of Alternative Energy Materials for Power Generation and Storage

机译:用于发电和存储的替代能源材料的第一原理研究

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摘要

Before renewable energy can completely replace the traditional power grid cheaper and more efficient energy generation and storage materials must be developed. Firstprinciples simulations based on density functional theory (DFT) are a valuable tool to study the properties of known materials and propose new materials with energy application. Al-ion batteries offer a promising storage alternative to Li-ion batteries as a result of Al's superior volumetric capacity, high specific capacity, stability, and abundance. However, Al's trivalency has made development of suitable cathodes challenging. Two recent promising cathodes are graphite and Chevrel phase Mo6S 8. The behavior of each battery system is studied using DFT simulations. The graphite cathode allows thermodynamically unstable intercalation of the AlCl4 anion through interaction with the ionic liquid electrolyte. The system can rapidly charge and discharge due to low diffusion barrier of AlCl4 in graphite and exhibits much larger voltages than alternative Al-ion batteries since monovalent AlCl4 is the intercalated species. The Mo6S8 cathode has previously been used as a cathode in Mg and Li battery systems. When used with an Al anode there has been discrepancy in the final discharge product of the cathode after Al intercalation. Comparing the thermodynamics of Al intercalation with the reported lattice constants of the cathode after cell discharge indicates that Al4/3Mo6S8 is the final discharge product. This is confirmed by the electronic structure of the cathode since a metal to semiconductor transition is observed at an Al concentration of 4/3. Al 4/3Mo6S8 has a 1.18 eV indirect gap and 1.35 eV direct gap indicating its potential use as an absorber material in a photovoltaic cell.;Over the past 5 years perovskite photovoltaic cells have stimulated significant research interest. The breakthrough was based on organic-inorganic CH 3NH3PbI3 which offers high efficiency with low material and synthesis cost. A DFT study on the point defects in this material show defect tolerance, which is rare when low cost synthesis methods are used. However, CH3NH3PbI3 suffers from intrinsic instability with carcinogenic PbI2 as a decay product, making a replacement necessary. Alternative materials in the perovskite structure are explored to find potential replacements using a combination of machine learning and Edisonian approaches. Trivalent cations such as Sb or Bi can be accommodated by splitting the anions in the perovskite to combinations of halides and chalcogenides and almost the entire periodic table can be searched by splitting cations in the perovskite structure with chemical formula A2BB'X 6.
机译:在可再生能源能够完全替代传统电网之前,必须开发更便宜,更高效的能源生产和存储材料。基于密度泛函理论(DFT)的第一性原理模拟是研究已知材料的特性并提出具有能源应用新材料的有价值的工具。由于Al的出色的容量,高的比容量,稳定性和丰度,Al离子电池提供了有希望的替代锂离子电池的存储方式。然而,Al的三价性使合适的阴极的开发具有挑战性。最近有两个很有希望的阴极是石墨和Chevrel相Mo6S8。使用DFT模拟研究了每个电池系统的性能。石墨阴极通过与离子液体电解质的相互作用,允许AlCl4阴离子的热力学不稳定插入。由于单价AlCl4是插层物质,该系统由于AlCl4在石墨中的低扩散势垒而可以快速充电和放电,并且比替代的Al离子电池具有更大的电压。 Mo6S8阴极以前曾在Mg和Li电池系统中用作阴极。当与Al阳极一起使用时,插入Al后阴极的最终放电产物有所不同。将铝插层的热力学与电池放电后阴极报告的晶格常数进行比较,表明Al4 / 3Mo6S8是最终的放电产物。这可以通过阴极的电子结构得到证实,因为在4/3的Al浓度下观察到了金属向半导体的转变。 Al 4 / 3Mo6S8具有1.18 eV的间接间隙和1.35 eV的直接间隙,表明其在光伏电池中作为吸收材料的潜在用途。在过去的5年中,钙钛矿光伏电池引起了巨大的研究兴趣。突破是基于有机-无机CH 3NH3PbI3,它具有高效率,低材料和合成成本的优点。对这种材料中点缺陷的DFT研究显示出了缺陷耐受性,这在使用低成本合成方法时很少见。但是,CH3NH3PbI3具有致癌性PbI2作为衰变产物的固有不稳定性,因此需要进行替代。探索了钙钛矿结构中的替代材料,以结合机器学习和爱迪生方法来寻找潜在的替代物。通过将钙钛矿中的阴离子拆分为卤化物和硫属元素化物的组合,可以容纳三价阳离子,例如Sb或Bi,并且可以通过将钙钛矿结构中的阳离子拆分为化学式A2BB'X 6来搜索几乎整个元素周期表。

著录项

  • 作者

    Agiorgousis, Michael L.;

  • 作者单位

    Rensselaer Polytechnic Institute.;

  • 授予单位 Rensselaer Polytechnic Institute.;
  • 学科 Computational physics.;Condensed matter physics.
  • 学位 Ph.D.
  • 年度 2018
  • 页码 140 p.
  • 总页数 140
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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