基于非晶碳的紧凑型多层选择性吸收器,用于太阳能-热转换

IF 6.3 2区 材料科学 Q2 ENERGY & FUELS
Junli Su , Dingquan Liu , Gang Chen , Chong Ma , Sheng Zhou , Xingyu Li , Kaixuan Wang , Qiuyu Zhang , Haihan Luo
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引用次数: 0

摘要

为应对能源危机和气候变化,迫切需要具有更强吸收能力和更高光热转换效率的环境可持续材料和结构。本研究采用磁控溅射技术制造了一系列基于非晶碳(a-C)的超宽带、全向和近乎完美的太阳辐射吸收器。这些吸收器具有 4 层、6 层和 8 层紧凑型多层薄膜结构,在 300-2500 纳米范围内的测量吸收率分别为 96.8%、96.5% 和 96.6%。这种高吸收效率研究了 a-C 的本征吸收和薄膜干涉增强吸收的协同效应。通过微观结构分析,与设计相比吸收率降低的原因在于 a-C 生长速率不稳定导致的光学厚度不匹配。此外,吸收体在 40° 范围内的吸收率变化非常微小,而在 60° 入射角内则保持了 80% 以上的高吸收率。我们对 100 至 250 °C 不同空气退火温度下的样品的微观结构、形态和光学特性进行了系统研究。由于表面缺陷或空隙造成的氧通道的出现,导致扩散的钛原子在高温下发生氧化反应。值得注意的是,所提出的吸收器可通过无光刻法制造,为 a-C 的大面积应用铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Compact multilayer selective absorbers based on amorphous carbon for solar-thermal conversion
In addressing the energy crisis and climate change, environmentally sustainable materials and structures with heightened absorption and enhanced photothermal conversion efficiency are urgently demanded. In this study, a series of ultrabroadband, omnidirectional, and near-perfect solar radiation absorbers based on amorphous carbon (a-C) were fabricated by magnetron sputtering. These absorbers, featuring 4, 6, and 8-layer compact multilayer thin film structures, exhibited measured absorption of 96.8 %, 96.5 %, and 96.6 % in the range of 300–2500 nm, respectively. The high absorption efficiency delves into the synergistic effects of intrinsic absorption of a-C and enhanced absorption through thin film interference. Through microstructure analysis, the reduced absorption compared to design originates from the optical thickness mismatch caused by the unstable growth rate of a-C. In addition, the absorbers show very slight variations in absorption within 40° and maintain a high absorption of more than 80 % in the incident angle of 60°. For samples with different air annealing temperatures from 100 to 250 °C, the microstructure, morphology, and optical properties were systematically investigated. The appearance of oxygen channels due to surface defects or voids leads to the oxidation reaction of the diffused Ti atoms at high temperature. Notably, the proposed absorber can be fabricated by a lithography-free method, paving a way for large-area application of a-C.
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来源期刊
Solar Energy Materials and Solar Cells
Solar Energy Materials and Solar Cells 工程技术-材料科学:综合
CiteScore
12.60
自引率
11.60%
发文量
513
审稿时长
47 days
期刊介绍: Solar Energy Materials & Solar Cells is intended as a vehicle for the dissemination of research results on materials science and technology related to photovoltaic, photothermal and photoelectrochemical solar energy conversion. Materials science is taken in the broadest possible sense and encompasses physics, chemistry, optics, materials fabrication and analysis for all types of materials.
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