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Synthesis, Transport, and Thermoelectric Studies of Topological Dirac Semimetal Cd3As2 for Room Temperature Waste Heat Recovery and Energy Conversion

机译:用于室温废热回收和能量转化的拓扑狄拉克半金属Cd3As2的合成,输运和热电研究

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摘要

Rising rates of the energy consumption and growing concerns over the climate change worldwide have made energy efficiency an urgent problem to address. Nowadays, almost two-thirds of the energy produced by burning fossil fuels to generate electrical power is lost in the form of the heat. On this front, increasing electrical power generation through a waste heat recovery remains one of the highly promising venues of the energy research. Thermo-electric generators (TEGs) directly convert thermal energy into electrical and are the prime candidates for application in low-grade thermal energy/ waste heat recovery. The key commercial TE materials, e.g. PbTe and Bi2Te 3, have room temperature ZT of less than 1, whereas ZT exceeding 3 is required for a TEG to be economically viable. With the thermoelectric efficiency typically within a few percent range and a low efficiency-to-cost ratio of TEGs, there has been a resurgence in the search for new class of thermo-electric materials for developing high efficiency thermo-to-electric energy conversion systems, with phonon-glass electron-crystal materials holding the most promise.;Herein, we focus on synthesis, characterization and investigation of electrical, thermo-electrical and thermal characteristics of crystalline Cd 3As2, a high performance 3D topological Dirac semimetal with Dirac fermions dispersing linearly in k3-space and possessing one of the largest electron mobilities known for crystalline materials, i.e. ~104--105cm2V--1 s--1. Suppression of carrier backscattering, ultra-high charge carrier mobility, and inherently low thermal conductivity make this semimetal a key candidate for demonstrating high, device-favorable S and in turn ZT.;In this work, a low-temperature vapor-based crystallization pathway was developed and optimized to produce free standing 2D cm-size crystals in Cd 3As2. Compared to the bulk crystals produced in previous studies, e.g. Piper-Polich, Bridgman, or flux method, Cd3As 2 samples were synthesized over a considerably shorter time ( only a few hours), were single crystals and highly stochiometric. A high thermopower of up to 613 microV K--1 and the electrical conductivity of ~105 S/m were registered within the temperature range of 300--400 K.;A 1o-method based on the transfer function was applied to probe a thermal conductivity, k of Cd3As2 platelets. The results yield k of ~2.4 W/m.K in the confirmation that the thermal conductivity of Cd3As2 crystals is to approach the amorphous limit at the room temperature.;With its peak thermopower attained at the low temperature range of ~300-400 K, high electrical conductivity and amorphous limit thermal conductivity, crystalline Cd3As2 grown via a low-T vapor based method demonstrates ZT > 3; the results confirm that as-produced Cd 3As2 platelets hold a high promise and is another phonon-glass electron-crystal TE material for the development of next generation, high efficiency thermo-electric generators and refrigerators operating under normal conditions.
机译:能源消耗率的上升以及世界范围内对气候变化的日益关注使能源效率成为迫切需要解决的问题。如今,燃烧化石燃料产生电能所产生的能量中,有近三分之二以热量的形式损失掉了。在这一方面,通过余热回收来增加发电量仍然是能源研究极有希望的场所之一。热电发电机(TEG)将热能直接转换为电能,是用于低等级热能/废热回收的主要候选者。关键的商用TE材料,例如PbTe和Bi2Te 3的室温ZT小于1,而要使TEG在经济上可行,则需要ZT超过3。由于TEG的热电效率通常在百分之几的范围内,而TEG的效率成本比很低,因此寻找新型热电材料以开发高效的热电能量转换系统的活动已重新开始,其中声子玻璃电子晶体材料最有希望。在这里,我们专注于合成,表征和研究晶体Cd 3As2的电,热电和热特性,Cd 3As2是一种具有Dirac费米子分散的高性能3D拓扑Dirac半金属。在k3空间中呈线性,并且具有晶体材料已知的最大电子迁移率之一,即〜104--105cm2V--1 s--1。抑制载流子反向散射,超高载流子迁移率以及固有的低热导率,使这种半金属成为了证明高,有利于器件的S以及反之ZT的关键候选材料;在这项工作中,低温蒸气基结晶途径进行了开发和优化,以在Cd 3As2中生产独立的2D cm大小的晶体。与先前研究中生产的块状晶体相比,例如使用Piper-Polich,Bridgman或助熔剂方法,Cd3As 2样品是在相当短的时间内(仅几个小时)合成的,是单晶且化学计量较高。在300--400 K的温度范围内记录了高达613 microV K--1的高热功率和〜105 S / m的电导率;基于传递函数的1o方法应用于探针a热导率,Cd3As2血小板的k。结果表明,在室温下Cd3As2晶体的热导率接近非晶极限时,k约为2.4 W / mK;在约300-400 K的低温范围内达到峰值热功率电导率和无定形极限热导率,通过低T蒸气法生长的Cd3As2晶体的ZT> 3;结果证实,所生产的Cd 3As2血小板具有很高的前景,并且是另一种声子玻璃电子晶体TE材料,用于开发在正常条件下运行的下一代高效热电发电机和冰箱。

著录项

  • 作者

    Hosseini, Tahereh A.;

  • 作者单位

    The University of Wisconsin - Milwaukee.;

  • 授予单位 The University of Wisconsin - Milwaukee.;
  • 学科 Electrical engineering.;Nanotechnology.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 111 p.
  • 总页数 111
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:38:57

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