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首页> 外文期刊>Solar Energy >Preparation of hollow glass microspheres@ZnS_xSe_(1-x) or copper-/indium- co-doped ZnS_xSe_(1-x) composite color pigments with enhanced near-infrared reflectance
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Preparation of hollow glass microspheres@ZnS_xSe_(1-x) or copper-/indium- co-doped ZnS_xSe_(1-x) composite color pigments with enhanced near-infrared reflectance

机译:中空玻璃微球@ZnS_xSe_(1-x)或铜/铟共掺杂的ZnS_xSe_(1-x)复合彩色颜料的制备,具有增强的近红外反射率

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To improve the near-infrared (NIR) solar reflectance of ZnSxSe1-x or copper-/indium-co-doped ZnSxSe1-x (ZnSxSe1-x:Cu/In) pigment with various colors, hollow glass microspheres (HGMs)@ZnSxSe1-x or ZnSxSe1-x:Cu/In composite pigments with a litchis-like core-shell structure were prepared with HGMs dispersed and surface-corroded in an alkali-solution under ultrasound and ZnSxSe1-x or ZnSxSe1-x:Cu/In particles deposited on HGMs surface via in-situ co-precipitation and subsequent sintering. The structure, particle size, morphology, color properties and thermal performance of the composite pigments were investigated by X-ray diffraction (XRD), Fourier transfer infrared spectroscopy (FTIR), X-ray photoelectron spectroscopy (XPS), laser diffraction particle size analysis, scanning electron microscopy (SEM), energy dispersive spectroscopy (EDS), nitrogen gas adsorption method (BET), ultraviolet-visible-near-infrared (UV-VIS-NIR) spectroscopy and infrared irradiation image analysis. The results show that ultrasound can promote the corrosion of HGMs surface in alkali solution and form a mesh-pore structure, thus providing some heterogeneous nucleation sites on HGMs surface and favoring the nucleation of pigment precursors on HGMs surface in subsequent in-situ co-precipitation reaction. Compared to ZnSxSe1-x or ZnSxSe1-x:Cu/In pigments, HGMs@ZnSxSe1-x or ZnSxSe1-x:Cu/In composite pigments have a higher solar reflectance since the multiple layer reflections occur at the interface between the pigment particles and HGMs, thus leading to a better heat-reflective property. The NIR solar reflectance of HGMs@ZnSxSe1-x or ZnSxSe1-x:Cu/In composite pigments is 90.61 +/- 0.052% or 73.13 +/- 0.046%. The surface temperature of aluminum plate coated with HGMs@ZnSxSe1-x composite yellow pigment is 3.4 +/- 0.2 degrees C or 9.6 +/- 0.2 degrees C lower than that of aluminum plate coated or uncoated with ZnS..Sei pigment. This approach may shed a light on a promising composite structure design for high-performance solar reflective 'cool materials'.
机译:为了提高具有各种颜色的ZnSxSe1-x或铜/铟共掺杂的ZnSxSe1-x(ZnSxSe1-x:Cu / In)颜料的近红外(NIR)太阳反射率,空心玻璃微球(HGMs)@ ZnSxSe1-制备了具有荔枝状核-壳结构的x或ZnSxSe1-x:Cu / In复合颜料,在碱性溶液中在超声下分散和腐蚀了HGM,并沉积了ZnSxSe1-x或ZnSxSe1-x:Cu / In颗粒通过原位共沉淀和随后的烧结在HGM表面上沉积。通过X射线衍射(XRD),傅里叶转移红外光谱(FTIR),X射线光电子能谱(XPS),激光衍射粒度分析,研究了复合颜料的结构,粒度,形貌,颜色特性和热性能。 ,扫描电子显微镜(SEM),能量色散光谱(EDS),氮气吸附法(BET),紫外可见近红外(UV-VIS-NIR)光谱和红外辐射图像分析。结果表明,超声能促进碱性溶液中HGMs表面的腐蚀并形成网孔结构,从而在HGMs表面提供一些不均匀的成核点,有利于颜料前体在随后的原位共沉淀中的成核。反应。与ZnSxSe1-x或ZnSxSe1-x:Cu / In颜料相比,HGMs @ ZnSxSe1-x或ZnSxSe1-x:Cu / In复合颜料具有更高的太阳反射率,因为多层反射发生在颜料颗粒与HGMs之间的界面处,从而导致更好的热反射性能。 HGMs @ ZnSxSe1-x或ZnSxSe1-x:Cu / In复合颜料的NIR太阳反射率为90.61 +/- 0.052%或73.13 +/- 0.046%。 HGMs @ ZnSxSe1-x复合黄色颜料涂覆的铝板的表面温度比涂覆或未涂覆ZnS.Sei颜料的铝板的表面温度低3.4 +/- 0.2摄氏度或9.6 +/- 0.2摄氏度。这种方法可能为高性能太阳能反射“凉爽材料”的复合材料结构设计带来希望。

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