首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Preparation and performances of all-solid-state variable infrared emittance devices based on amorphous and crystalline WO3 electrochromic thin films
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Preparation and performances of all-solid-state variable infrared emittance devices based on amorphous and crystalline WO3 electrochromic thin films

机译:基于非晶和结晶WO3电致变色薄膜的全固态可变红外发射装置的制备与性能

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摘要

In this study, two all-solid-state electrochromic devices (ECDs), composed of amorphous WO3 (a-WO3) and crystalline WO3 (c-WO3) as the electrochromic layers, have been prepared using radio frequency magnetron sputtering. The devices have five-layered structures consisting of LiTaO3 as the solid electrolyte layer, NiOx as the ion storage layer, and ITO as the electrode layer. The a-WO3 and c-WO3 films are prepared by adjusting the sputtering power, thus not affecting the phase composition of the other layers. The infrared (IR) emittance of both devices is studied in detail. The results show that the crystallinity of the WO3 layer greatly influences the IR emittance of the devices. The IR emittance of the a-WO3 ECD in the range of 2.5-25 mu m increases greatly after lithium ion insertion, whereas the IR emittance of the c-WO3 ECD decreases. This difference can be explained by the absorption of IR vibrations and the reflection of the pseudo-metallic behavior of WO3. a-WO3 ECD exhibits a greater regulating capacity for thermal radiation, and its emittance modulation range is about 0.37 in the spectral range 8-14 mu m and 0.30 in the spectral range 2.5-25 mu m. The electrochromic technique is an ideal thermal control method for future space technology.
机译:在该研究中,使用射频磁控溅射制备由无定形WO3(A-WO3)和结晶WO3(C-WO3)组成的两种全固态电致化器件(ECD),其由射频磁控溅射制备。该装置具有五层结构,该结构由LiTaO 3作为固体电解质层,NiOx作为离子存储层,以及ITO作为电极层。通过调节溅射功率来制备A-WO3和C-WO3薄膜,从而不影响其他层的相组成。详细研究了两种器件的红外线(IR)粘合率。结果表明,WO3层的结晶度大大影响了器件的IR射力。 A-WO3 ECD在锂离子插入后的2.5-25μm的IR的IR发射率大大增加,而C-WO3 ECD的IR发射率降低。通过振动的吸收和WO3伪金属行为的吸收可以解释这种差异。 A-WO3 ECD表现出更大的热辐射能力,并且其光谱范围内的光谱范围为8-14μm和0.30的光谱范围为2.5-25μm。电致变色技术是未来空间技术的理想热控制方法。

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