Wu Senwei, Zhou Longxiao, Li Bin, Tian Shouqin, Zhao Xiujian
State Key Laboratory of Silicate Materials for Architectures, Wuhan University of Technology (WUT), No. 122, Luoshi Road, Wuhan 430070, China.
Nanomaterials (Basel). 2023 Aug 4;13(15):2252. doi: 10.3390/nano13152252.
Vanadium dioxide (VO) has been a promising energy-saving material due to its reversible metal-insulator transition (MIT) performance. However, the application of VO films has been seriously restricted due to the intrinsic low solar-energy modulation ability (Δ) and low luminous transmittance () of VO. In order to solve the problems, the surface structure of VO particles was regulated by the quenching process and the VO dispersed films were fabricated by spin coating. Characterizations showed that the VO particles quenched in deionized water or ethanolreserved VO(M) phase structure and they were accompanied by surface lattice distortion compared to the pristine VO. Such distortion structure contributed to less aggregation and highly individual dispersion of the quenched particles in nanocomposite films. The corresponding film of VO quenched in water exhibited much higher Δ with an increment of 42.5% from 8.8% of the original VO film, because of the significant localized surface plasmon resonance (LSPR) effect. The film fabricated from the VO quenched in ethanol presented enhanced thermochromic properties with 15.2% of Δ and 62.5% of . It was found that the excellent resulted from the highly uniform dispersion state of the quenched VO nanoparticles. In summary, the study provided a facile way to fabricate well-dispersed VO nanocomposite films and to facilitate the industrialization development of VO thermochromic films in the smart window field.
二氧化钒(VO)因其可逆的金属-绝缘体转变(MIT)性能而成为一种很有前景的节能材料。然而,由于VO固有的低太阳能调制能力(Δ)和低透光率(),VO薄膜的应用受到了严重限制。为了解决这些问题,通过淬火工艺调控了VO颗粒的表面结构,并通过旋涂制备了VO分散薄膜。表征结果表明,在去离子水或乙醇中淬火的VO颗粒保留了VO(M)相结构,与原始VO相比,它们伴随着表面晶格畸变。这种畸变结构有助于淬火颗粒在纳米复合薄膜中减少聚集并实现高度分散。在水中淬火的VO对应的薄膜表现出更高的Δ,与原始VO薄膜的8.8%相比增加了42.5%,这是由于显著的局域表面等离子体共振(LSPR)效应。由在乙醇中淬火的VO制备的薄膜表现出增强的热致变色性能,Δ为15.2%,为62.5%。发现优异的性能源于淬火VO纳米颗粒的高度均匀分散状态。总之,该研究提供了一种简便的方法来制备分散良好的VO纳米复合薄膜,并促进VO热致变色薄膜在智能窗领域的产业化发展。