mosi2基辐射冷却薄膜的电子结构与发射率的关系

IF 6.3 2区 材料科学 Q2 CHEMISTRY, PHYSICAL
Arseniy Baskakov, Robbert van de Kruijs, Z. Silvester Houweling, Giorgio Colombi, Fedor Akhmetov, Jacobus M. Sturm, Marcelo Ackermann
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引用次数: 0

摘要

在尺寸不断缩小的电子和光学应用中,被动辐射冷却已成为越来越重要的课题。当设备在低环境压力下运行并包含或由超薄层组成时,辐射冷却可以显著有助于防止过热。钼硅化物因其抗氧化性、化学稳定性和发射率而成为高性能辐射冷却材料的有希望的候选者。本文研究了独立mosi2基超薄膜中Mo组分和退火温度对发射率的影响。薄膜的不同相(600°C下形成的六边形+非晶态和900°C下形成的四边形MoSi2)影响电子能带结构和随后的发射率。利用傅里叶变换红外光谱,通过多层德鲁德-洛伦兹振子模型同时分析薄膜的反射率和透射率,揭示了自由电子电导率对薄膜发射率的影响。四边形MoSi2薄膜的介电函数表现为自由电子和带间的共同贡献,而六边形和非晶态MoSi2薄膜的介电函数主要由带间贡献形成。对于后一种薄膜,增加Mo含量可以略微提高电导率,显著提高发射率。相反,对于四边形MoSi2,增加Mo含量会导致电导率的显著增加和发射率的小幅增加。发射率和电导率之间所揭示的相关性允许使用调制电导率的方法来调整发射率,例如掺杂,调整Mo含量,利用光导效应或操纵薄膜结晶度。这项工作探讨了MoSi2的发射率,提出了一种研究薄膜发射率的方法,特别是在辐射冷却应用的背景下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Relation between electronic structure and emissivity of MoSi2-based thin membranes for radiative cooling

Relation between electronic structure and emissivity of MoSi2-based thin membranes for radiative cooling
Passive radiative cooling is becoming an increasingly important topic in electronic and optical applications where dimensions keep shrinking. When devices operate in low ambient pressures and contain or comprise of ultrathin layers radiative cooling can contribute significantly to prevent overheating. Molybdenum silicides are promising candidates for high-performance radiative cooling materials due to their oxidation resistance, chemical stability and emissivity. This study investigates the dependence of emissivity on Mo fraction and annealing temperature in free-standing MoSi2-based ultrathin membranes. Distinct phases of the films (hexagonal + amorphous formed at 600 °C and tetragonal MoSi2 formed at 900 °C) influence electronic band structure and subsequently emissivity. Employing Fourier-transform infrared spectroscopy and simultaneously analyzing reflectance and transmittance via multilayer Drude-Lorentz oscillators model, we uncover how free-electron conductivity plays a role in membranes emissivity. Dielectric functions of tetragonal MoSi2 films exhibit combined free-electron and interband contributions, while for the films based on hexagonal and amorphous MoSi2 the dielectric functions are mainly shaped by interband contributions. For the latter films increasing Mo content enhances conductivity slightly and emissivity significantly. Conversely, for tetragonal MoSi2 increasing Mo content leads to strong increase in conductivity and small increase in emissivity. The revealed correlation between emissivity and electrical conductivity allows for emissivity tuning using methods that modulate electrical conductivity, such as doping, adjusting Mo content, leveraging photoconductivity effects, or manipulating film crystallinity. This work explores of MoSi2 emissivity, proposing a methodology for studying the emissivity of thin films, particularly in the context of radiative cooling applications.
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来源期刊
Journal of Alloys and Compounds
Journal of Alloys and Compounds 工程技术-材料科学:综合
CiteScore
11.10
自引率
14.50%
发文量
5146
审稿时长
67 days
期刊介绍: The Journal of Alloys and Compounds is intended to serve as an international medium for the publication of work on solid materials comprising compounds as well as alloys. Its great strength lies in the diversity of discipline which it encompasses, drawing together results from materials science, solid-state chemistry and physics.
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