Pressure-Induced Assembly of Organic Phase-Change Materials Hybridized with Expanded Graphite and Carbon Nanotubes for Direct Solar Thermal Harvesting and Thermoelectric Conversion.

IF 4.3 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY Nanomaterials Pub Date : 2024-12-21 DOI:10.3390/nano14242047
Jie Ji, Yizhe Liu, Xiaoxiang Li, Yangzhe Xu, Ting Hu, Zhengzheng Li, Peng Tao, Tao Deng
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Abstract

Direct harvesting of abundant solar thermal energy within organic phase-change materials (PCMs) has emerged as a promising way to overcome the intermittency of renewable solar energy and pursue high-efficiency heating-related applications. Organic PCMs, however, generally suffer from several common shortcomings including melting-induced leakage, poor solar absorption, and low thermal conductivity. Compounding organic PCMs with single-component carbon materials faces the difficulty in achieving optimized comprehensive performance enhancement. Herein, this work reports the employment of hybrid expanded graphite (EG) and carbon nanotubes (CNTs) to simultaneously realize leakage-proofness, high solar absorptance, high thermal conductivity, and large latent heat storage capacity. The PCM composites were prepared by directly mixing commercial high-temperature paraffin (HPA) powders, EG, and CNTs, followed by subsequent mechanical compression molding. The HPA-EG composites loaded with 20 wt% of EG could effectively suppress melting-induced leakage. After further compounding with 1 wt% of CNTs, the form-stable HPA-EG20-CNT1 composites achieved an axial and in-plane thermal conductivity of 4.15 W/m K and 18.22 W/m K, and a melting enthalpy of 165.4 J/g, respectively. Through increasing the loading of CNTs to 10 wt% in the top thin layer, we further prepared double-layer HPA-EG-CNT composites, which have a high surface solar absorptance of 92.9% for the direct conversion of concentrated solar illumination into storable latent heat. The charged composites could be combined with a thermoelectric generator to release the stored latent heat and generate electricity, which could power up small electric devices such as light-emitting diodes. This work demonstrates the potential for employing hybrid fillers to optimize the thermophysical properties and solar thermal harvesting performances of organic PCMs.

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膨胀石墨和碳纳米管杂化有机相变材料的压力诱导组装用于直接太阳能热收集和热电转换。
在有机相变材料(PCMs)中直接收集丰富的太阳能热能已经成为克服可再生太阳能间歇性和追求高效加热相关应用的一种有前途的方法。然而,有机pcm通常有几个共同的缺点,包括熔化引起的泄漏,较差的太阳能吸收和低导热性。有机pcm与单组分碳材料复配面临着综合性能优化提升的难题。本文报道了利用膨胀石墨(EG)和碳纳米管(CNTs)混合材料同时实现防泄漏、高太阳能吸收率、高导热性和大潜热存储量的方法。PCM复合材料是通过将商业高温石蜡(HPA)粉末、EG和CNTs直接混合,然后进行机械压缩成型制备的。掺加20% EG的HPA-EG复合材料能有效抑制熔融泄漏。进一步添加1 wt%的CNTs后,形成稳定的HPA-EG20-CNT1复合材料的轴向导热系数为4.15 W/m K,面内导热系数为18.22 W/m K,熔融焓为165.4 J/g。通过在顶部薄层中增加10 wt%的碳纳米管负载,我们进一步制备了双层HPA-EG-CNT复合材料,其表面太阳吸收率高达92.9%,可将集中的太阳光照直接转化为可储存的潜热。这种带电的复合材料可以与热电发电机结合,释放储存的潜热并发电,从而为发光二极管等小型电子设备供电。这项工作证明了使用混合填料来优化有机pcm的热物理性质和太阳能热收集性能的潜力。
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来源期刊
Nanomaterials
Nanomaterials NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
8.50
自引率
9.40%
发文量
3841
审稿时长
14.22 days
期刊介绍: Nanomaterials (ISSN 2076-4991) is an international and interdisciplinary scholarly open access journal. It publishes reviews, regular research papers, communications, and short notes that are relevant to any field of study that involves nanomaterials, with respect to their science and application. Thus, theoretical and experimental articles will be accepted, along with articles that deal with the synthesis and use of nanomaterials. Articles that synthesize information from multiple fields, and which place discoveries within a broader context, will be preferred. There is no restriction on the length of the papers. Our aim is to encourage scientists to publish their experimental and theoretical research in as much detail as possible. Full experimental or methodical details, or both, must be provided for research articles. Computed data or files regarding the full details of the experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material. Nanomaterials is dedicated to a high scientific standard. All manuscripts undergo a rigorous reviewing process and decisions are based on the recommendations of independent reviewers.
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