Acta Optica Sinica, Volume. 43, Issue 7, 0716001(2023)

Effect of Nanoparticles on Solar Selective Absorbing Characteristics of Cermet Coatings for Photothermal Conversion

Xiaopeng Yuan1, Yabin Kang1, Xiaobo Wang2, Kewei Li1、*, Dianqing Gong1, and Xudong Cheng3
Author Affiliations
  • 1College of Materials Science and Engineering, Taiyuan University of Technology, Taiyuan 030024, Shanxi, China
  • 2Department of Physics and Electronic Engineering, Jinzhong University, Jinzhong 030619, Shanxi, China
  • 3State Key Laboratory of Advanced Technology for Materials Synthesis and Progressing, Wuhan University of Technology, Wuhan 430070, Hubei, China
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    References(40)

    [1] Bello M, Shanmugan S. Achievements in mid and high-temperature selective absorber coatings by physical vapor deposition (PVD) for solar thermal Application: a review[J]. Journal of Alloys and Compounds, 839, 155510(2020).

    [2] Ibrahim K, Taha H, Rahman M M et al. Solar selective performance of metal nitride/oxynitride based magnetron sputtered thin film coatings: a comprehensive review[J]. Journal of Optics, 20, 033001(2018).

    [3] Tervo E J, Steiner M A. Semiconductor-dielectric-metal solar absorbers with high spectral selectivity[J]. Solar Energy Materials and Solar Cells, 240, 111735(2022).

    [4] Grosjean A, Soum-Glaude A, Thomas L. Influence of operating conditions on the optical optimization of solar selective absorber coatings[J]. Solar Energy Materials and Solar Cells, 230, 111280(2021).

    [5] Chen F, Gui Q H. Non-gap loss of compound parabolic concentrator with solar vacuum tube as absorber[J]. Acta Optica Sinica, 42, 0208001(2022).

    [6] Cao F, McEnaney K, Chen G et al. A review of cermet-based spectrally selective solar absorbers[J]. Energy & Environmental Science, 7, 1615-1627(2014).

    [7] Atkinson C, Sansom C L, Almond H J et al. Coatings for concentrating solar systems: a review[J]. Renewable and Sustainable Energy Reviews, 45, 113-122(2015).

    [8] Tsai T K, Li Y H, Fang J S. Spectral properties and thermal stability of CrN/CrON/Al2O3 spectrally selective coating[J]. Thin Solid Films, 615, 91-96(2016).

    [9] Moon J, Lu D, VanSaders B et al. High performance multi-scaled nanostructured spectrally selective coating for concentrating solar power[J]. Nano Energy, 8, 238-246(2014).

    [10] Zheng L Q, Zhou F Y, Zhou Z D et al. Angular solar absorptance and thermal stability of Mo-SiO2 double cermet solar selective absorber coating[J]. Solar Energy, 115, 341-346(2015).

    [11] Wang X Y, Gao J H, Hu H B et al. High-temperature tolerance in WTi-Al2O3 cermet-based solar selective absorbing coatings with low thermal emissivity[J]. Nano Energy, 37, 232-241(2017).

    [12] Liu H D, Wan Q, Lin B Z et al. The spectral properties and thermal stability of CrAlO-based solar selective absorbing nanocomposite coating[J]. Solar Energy Materials and Solar Cells, 122, 226-232(2014).

    [13] Nuru Z Y, Arendse C J, Mongwaketsi N et al. Effects of substrate temperatures on the thermal stability of AlxOy/Pt/AlxOy multilayered selective solar absorber coatings[J]. Renewable Energy, 75, 590-597(2015).

    [15] Pang X M, Zhou F L. Thermostability and weatherability of TiN/TiC-Ni/Mo solar absorption coating by spray method-laser cladding hybrid deposition[J]. Optics and Lasers in Engineering, 127, 105983(2020).

    [16] Wang J, Li C M, Ao J et al. Elastic and optical properties of IVB group transition-metal nitrides[J]. Acta Physica Sinica, 62, 087102(2013).

    [17] Nejati M R, Fathollahi V, Asadi M K. Computer simulation of the optical properties of high-temperature cermet solar selective coatings[J]. Solar Energy, 78, 235-241(2005).

    [18] Shu Z X, Zhang Y J, Wang X C et al. Effect of antisite defects on photoelectric properties of K2CsSb photocathode[J]. Acta Optica Sinica, 41, 1216001(2021).

    [19] Pan S H, Yu H, Zhao Y P et al. FDTD simulation and study on effect of metal nanoparticle introduction on light extraction of top-emitting OLED[J]. Acta Optica Sinica, 42, 0916001(2022).

    [20] Kim J, Lee G J, Park I et al. Finite-difference time-domain numerical simulation study on the optical properties of silver nanocomposites[J]. Journal of Nanoscience and Nanotechnology, 12, 5527-5531(2012).

    [21] Willets K A, Van Duyne R P. Localized surface plasmon resonance spectroscopy and sensing[J]. Annual Review of Physical Chemistry, 58, 267-297(2007).

    [22] Wang X B, Zhang X M, Li Q Y et al. Spectral properties of AlCrNO-based multi-layer solar selective absorbing coating during the initial stage of thermal aging upon exposure to air[J]. Solar Energy Materials and Solar Cells, 188, 81-92(2018).

    [23] Schuller J A, Barnard E S, Cai W S et al. Plasmonics for extreme light concentration and manipulation[J]. Nature Materials, 9, 193-204(2010).

    [24] Zayats A V, Smolyaninov I I, Maradudin A A. Nano-optics of surface plasmon polaritons[J]. Physics Reports, 408, 131-314(2005).

    [25] Guler U, Ndukaife J C, Naik G V et al. Local heating with lithographically fabricated plasmonic titanium nitride nanoparticles[J]. Nano Letters, 13, 6078-6083(2013).

    [26] Gui L L, Bagheri S, Strohfeldt N et al. Nonlinear refractory plasmonics with titanium nitride nanoantennas[J]. Nano Letters, 16, 5708-5713(2016).

    [27] Barshilia H C, Selvakumar N, Rajam K S et al. TiAlN/TiAlON/Si3N4 tandem absorber for high temperature solar selective applications[J]. Applied Physics Letters, 89, 191909(2006).

    [28] Fugger M, Plappert M, Schaeffer C et al. Comparison of WTi and WTi(N) as diffusion barriers for Al and Cu metallization on Si with respect to thermal stability and diffusion behavior of Ti[J]. Microelectronics Reliability, 54, 2487-2493(2014).

    [29] Zekaik A, Benhebal H, Benrabah B. Synthesis and characterization of Cu doped chromium oxide (Cr2O3) thin films[J]. High Temperature Materials and Processes, 38, 806-812(2019).

    [30] Yang X G, Liu R, Lei Y et al. Dual influence of reduction annealing on diffused hematite/FTO junction for enhanced photoelectrochemical water oxidation[J]. ACS Applied Materials & Interfaces, 8, 16476-16485(2016).

    [31] Zhou Y H, Peng Z B, Chen Y D et al. First-principles study of the electronic, optical and transport of few-layer semiconducting MXene[J]. Computational Materials Science, 168, 137-143(2019).

    [32] Berdiyorov G R, Madjet M E. Structural, electronic transport and optical properties of functionalized quasi-2D TiC2 from first-principles calculations[J]. Applied Surface Science, 390, 1009-1014(2016).

    [33] Zhu W H, Xiao J J, Xiao H M. Density functional theory study of the structural and optical properties of lithium azide[J]. Chemical Physics Letters, 422, 117-121(2006).

    [34] Signore M A, Sytchkova A, Rizzo A. Sputtering deposition and characterization of tandem absorbers for photo-thermal systems operating at mid temperature[J]. Optical Materials, 34, 292-297(2011).

    [35] Ding D W, Wu H D, Yu X J. Air-stable NiFeCrOx selective absorber for mid-to-high temperature application[J]. Solar Energy, 113, 43-47(2015).

    [36] Tang L, Cao F, Li Y et al. High performance mid-temperature selective absorber based on titanium oxides cermet deposited by direct current reactive sputtering of a single titanium target[J]. Journal of Applied Physics, 119, 045102(2016).

    [37] Meng J P, Liu X P, Fu Z Q et al. Optical design of Cu/Zr0.2AlN0.8/ZrN/AlN/ZrN/AlN/Al34O62N4 solar selective absorbing coatings[J]. Solar Energy, 146, 430-435(2017).

    [38] Barshilia H C, Selvakumar N, Rajam K S et al. Structure and optical properties of pulsed sputter deposited CrxOy/Cr/Cr2O3 solar selective coatings[J]. Journal of Applied Physics, 103, 023507(2008).

    [39] Chookajorn T, Murdoch H A, Schuh C A. Design of stable nanocrystalline alloys[J]. Science, 337, 951-954(2012).

    [40] Wu X B, You Y W, Kong X S et al. First-principles determination of grain boundary strengthening in tungsten: dependence on grain boundary structure and metallic radius of solute[J]. Acta Materialia, 120, 315-326(2016).

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    Xiaopeng Yuan, Yabin Kang, Xiaobo Wang, Kewei Li, Dianqing Gong, Xudong Cheng. Effect of Nanoparticles on Solar Selective Absorbing Characteristics of Cermet Coatings for Photothermal Conversion[J]. Acta Optica Sinica, 2023, 43(7): 0716001

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    Paper Information

    Category: Materials

    Received: Aug. 29, 2022

    Accepted: Oct. 31, 2022

    Published Online: Apr. 6, 2023

    The Author Email: Li Kewei (likewei@tyut.edu.cn)

    DOI:10.3788/AOS221652

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