Jiankang Li, Raju Chetty, Zihang Liu, Weihong Gao, Takao Mori
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引用次数: 0
Abstract
The n-type Mg3(Sb, Bi)2 compounds show great potential for wasted heat energy harvesting due to their promising thermoelectric properties. This work discovers that doping transition element Ag into the n-type Mg3(Sb, Bi)2 can effectively optimize the power factor and suppress the lattice thermal conductivity simultaneously. Interestingly, the Ag doping has different effects compared to the isoelectronic and same group element Cu addition studied previously. A high power factor of 19.6 µW cm−1 K−2 is obtained at 673 K owing to the increased electrical conductivity. At the same time, the lattice thermal conductivity is reduced to ≈0.5 W m−1 K−1 because of enhanced phonon scattering induced by Ag atoms. These improvements lead to a peak figure of merit (ZT) of 1.64 at 673 K as well as a high average ZT of 1.27 is obtained from 323 K to 673 K. Furthermore, a thermoelectric single leg with a competitive conversion efficiency of ≈11% under a hot-side temperature of 673 K is fabricated successfully. In addition, a 2-pair module composed of n-type Mg3(Sb, Bi)2 alloy and p-type MgAgSb-based compound demonstrates the high conversion efficiency of ≈7.9% at a temperature difference of 277 K, which will significantly upgrade the sustainable energy recycling technology.
n 型 Mg3(Sb,Bi)2 化合物因其良好的热电特性而显示出巨大的废热能量收集潜力。这项研究发现,在 n 型 Mg3(Sb,Bi)2 中掺入过渡元素 Ag 可以有效优化功率因数,同时抑制晶格热导率。有趣的是,与之前研究的等电子和同族元素铜的添加相比,掺杂银具有不同的效果。由于导电率的提高,在 673 K 时获得了 19.6 µW cm-1 K-2 的高功率因数。同时,由于银原子诱导的声子散射增强,晶格热导率降低到≈0.5 W m-1 K-1。这些改进使 673 K 时的峰值功勋值(ZT)达到 1.64,并且在 323 K 至 673 K 期间获得了 1.27 的高平均 ZT。此外,由 n 型 Mg3(Sb,Bi)2 合金和 p 型 MgAgSb 基化合物组成的 2 对模块在 277 K 的温差下实现了≈7.9% 的高转换效率,这将显著提升可持续能源循环利用技术。
期刊介绍:
ACS Chemical Neuroscience publishes high-quality research articles and reviews that showcase chemical, quantitative biological, biophysical and bioengineering approaches to the understanding of the nervous system and to the development of new treatments for neurological disorders. Research in the journal focuses on aspects of chemical neurobiology and bio-neurochemistry such as the following:
Neurotransmitters and receptors
Neuropharmaceuticals and therapeutics
Neural development—Plasticity, and degeneration
Chemical, physical, and computational methods in neuroscience
Neuronal diseases—basis, detection, and treatment
Mechanism of aging, learning, memory and behavior
Pain and sensory processing
Neurotoxins
Neuroscience-inspired bioengineering
Development of methods in chemical neurobiology
Neuroimaging agents and technologies
Animal models for central nervous system diseases
Behavioral research