微波加热铁碳纳米颗粒在碳球上的快速锚定。

IF 4.3 3区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Suguang Yang, Minghui Lyu, Xiaxin Jiao, Na Wang, Kai Liu, Hong Li, Zhenyu Zhao, Xin Gao
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引用次数: 0

摘要

尽管铁/碳复合材料在微波吸收领域具有优异的性能,但这些复合材料的合成面临着加工时间长和铁纳米粒子聚集等挑战。本文提出了一种有效的微波诱导制备方法来克服这一问题。首先,合成粒径均匀的碳球作为沉积铁的载体。通过对二茂铁的超快热解,将铁纳米颗粒固定在碳球表面,对比分析微波加热和常规加热制备的Fe/C材料的微观结构和组成,定量研究二茂铁添加量与复介电常数的相关性。阐明了微波增强铁颗粒分散的机理,表明微波引起的碳球局部过热使二茂铁迅速分解,促进了铁纳米颗粒在碳球表面均匀沉积。因此,与传统方法合成的Fe/C材料相比,微波加热提高了负载铁纳米粒子的分散性,将反应时间从小时缩短到2分钟。此外,开发了促进铁纳米粒子高效沉积的最佳多步骤策略,其中各种不同的吸波材料,在2.45 GHz处获得的实部和虚部最高分别为87.15和68.81。本文是“可持续发展中的微波科学”讨论会议的一部分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rapid anchoring of iron-carbon nanoparticles on carbon spheres using microwave heating.

Despite excellent performance of iron/carbon materials in microwave absorbing field, the synthesis of these composites faces challenges, involving prolonged processing times and the aggregation of iron nanoparticles. Here, an efficient microwave-induced preparation method is proposed to overcome this problem. First, carbon spheres with uniform particle size were synthesized as support for iron deposition. By employing ultrafast pyrolysis of ferrocene, iron nanoparticles were anchored on the surface of carbon spheres, where a comparative analysis of the microstructure and composition of Fe/C materials synthesized via microwave heating and conventional heating was conducted, alongside a quantitative investigation into the correlation between ferrocene addition and complex dielectric constant. The mechanism of microwave enhancing dispersion of iron particles was elucidated, indicating that microwave induced local overheating of carbon spheres rapidly decomposes ferrocene, facilitating uniform deposition of iron nanoparticles on the carbon sphere surfaces. Consequently, compared with Fe/C materials synthesized via conventional methods, microwave heating improves the dispersion of supported iron nanoparticles, reducing reaction time from hours to 2 min. In addition, an optimal multi-step strategy for promoting the efficient deposition of iron nanoparticles was developed, where a variety of different absorbing materials, the highest real and imaginary parts of which, obtained at 2.45 GHz, were 87.15 and 68.81, respectively.This article is part of the discussion meeting issue 'Microwave science in sustainability'.

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来源期刊
CiteScore
9.30
自引率
2.00%
发文量
367
审稿时长
3 months
期刊介绍: Continuing its long history of influential scientific publishing, Philosophical Transactions A publishes high-quality theme issues on topics of current importance and general interest within the physical, mathematical and engineering sciences, guest-edited by leading authorities and comprising new research, reviews and opinions from prominent researchers.
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