无机材料学报 ›› 2021, Vol. 36 ›› Issue (10): 1013-1021.DOI: 10.15541/jim20210070 CSTR: 32189.14.10.15541/jim20210070
所属专题: 【虚拟专辑】电致变色与热致变色材料
• 综述 • 下一篇
收稿日期:
2021-02-03
修回日期:
2021-03-08
出版日期:
2021-10-20
网络出版日期:
2021-04-05
通讯作者:
曹逊, 研究员. E-mail: cxun@mail.sic.ac.cn
作者简介:
徐 放(1993-), 女, 博士研究生. E-mail: xufang@student.sic.ac.cn
基金资助:
XU Fang1,2(), JIN Pingshi1, LUO Hongjie3, CAO Xun1,2(
)
Received:
2021-02-03
Revised:
2021-03-08
Published:
2021-10-20
Online:
2021-04-05
Contact:
CAO Xun, professor. E-mail: cxun@mail.sic.ac.cn
About author:
XU Fang(1993-), female, PhD candidate. E-mail: xufang@student.sic.ac.cn
Supported by:
摘要:
二氧化钒(VO2)作为一种过渡金属氧化物, 能够响应外界温度变化并发生半导体-金属相变, 相变过程中伴随着红外波段透过率的大幅度改变, 在智能窗领域受到广泛关注。近年来, 关于VO2制备方式、相变机理以及改善调光能力等方面的研究颇为丰富。然而, 在实际应用中仍面临技术瓶颈和挑战, 如本征相变温度较高、可见光透过率较低、太阳能调节效率不足、耐候稳定性较差、颜色舒适度较低(呈现棕黄色)等。目前, 关于VO2本身性能改善的研究已有很多, 提升其性能的通用手段如元素掺杂、多层膜结构设计、微结构设计等已被广泛采用。本文总结了VO2通用性能的提升策略, 着重介绍了VO2基智能窗在实际应用中服役性能、低温柔性制备以及颜色调控等方面的最新研究进展, 同时从皮肤舒适性和环境友好性等方面分析和展望了未来的发展。
中图分类号:
徐放, 金平实, 罗宏杰, 曹逊. VO2热致变色智能窗: 现状、挑战及展望[J]. 无机材料学报, 2021, 36(10): 1013-1021.
XU Fang, JIN Pingshi, LUO Hongjie, CAO Xun. VO2 Thermochromic Smart Window: Status, Challenges and Prospects[J]. Journal of Inorganic Materials, 2021, 36(10): 1013-1021.
图2 元素掺杂对VO2的相变调控
Fig. 2 Element doping of VO2 (a) Comparison of the optical hysteresis at 2000 nm of VO2 film and W-doped VO2 film[9]; (b) Transmittance hysteresis loops at λ=2000 nm for V1-xMoxO2 films[10]; (c) Temperature dependent transition hysteresis loops for the pure and Mg-doped VO2 films grown on ZnO substrates[14]
图3 多层膜结构设计
Fig. 3 Multilayer film structure design (a) 3D surface image of the luminous transmittance (Tlum, lt) calculation of the Cr2O3/VO2 (80 nm)/SiO2 multilayer structure on the thickness design of Cr2O3 (bottom layer) and SiO2 (top layer); (b) Transmittance spectra (350-2600 nm) at 25 (solid lines) and 90 ℃ (dashed lines) for the CVS structures with various thicknesses of SiO2 layers[26]; (c) Schematic illustration of H2O/VO2 film; (d) Transmittance spectra of VO2 films with and without H2O layer[24]; (e) Schematic illustration of SA/Glass/TVT structure; (f) Transmittance spectra in visible-NIR region at room temperature (25 ℃) and 95 ℃ of SA/Glass/TVT structure[25]. SA: SiO2/AZO (300 nm)/Glass Colourful figures are available on website
图4 VO2微结构设计
Fig. 4 VO2 microstructure design (a) Schematic illustration of the as-prepared 3DOM (3D Ordered Macroporous) VO2 (M) film; (b) Photographs of the VO2(M) films on glass slides; (c) Optical transmittance spectra of the VO2 (M) films with 3DOM structures[31]; (d) Schematic of fabrication route for nanoporous VO2 films; (e) Optical photograph of the nanoporous VO2 films on quartz; (f) Transmittance spectra of the nanoporous VO2 films[32]
图5 VO2@ZnO核壳结构纳米颗粒(a)合成流程图以及(b)TEM照片, VO2@ZnO薄膜的(c)高低温透过率曲线以及(d)与其他VO2基智能窗的耐候稳定性对比图[36], (e)不同位置保护层的样品示意图[39]
Fig. 5 (a) Experimental flow chart for the synthesis of VO2@ZnO core-shell structure nanoparticles, (b)TEM image of VO2@ZnO core-shell structure nanoparticle; (c) Optical transmittance spectra at 20 and 80 ℃ of uncoated VO2 film and VO2@ZnO film; (d) Solar regulation efficiency (ΔTsol), luminous transmittance (Tlum), and durability at constant temperature (60 ℃) and humidity (90%) of different VO2-based smart window coatings[36]; (e) Schematic illustrations of four types of sample[39]
图6 柔性薄膜及其制备流程图
Fig. 6 Flexible films and their preparation flow chart (a) Schematic illustration of the fabrication process for the SWNTs/VO2/mica hierarchical film; (b) Thin VO2/mica film showing excellent flexibility[45]; (c) Schematic illustration of the graphene-supported VO2 film[46]
图7 VO2的颜色调控
Fig. 7 Color control of VO2 (a) Pure hydrogel thin film at room temperature (25 ℃); (b) VO2/hydrogel hybrid at room temperature (25 ℃) and (c) 35 ℃[47]; (d) Model of the VO2 film comprising periodic silver-nanodisk array; (e) Re?ection images of the pattern at 20 and 80 ℃, respectively[52]; (f) Photographs of pure IL-Ni-Cl complexes film, pure VO2 nanoparticles film, and VO2/IL-Ni-Cl composite film at 20 (left) and 80 ℃ (right)[48]
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