钨
材料科学
兴奋剂
微晶
热的
光电子学
核工程
工程物理
冶金
工程类
物理
热力学
作者
Tao Zhao,Yanyu Chen,Xinqquan Guo,Chenchen Geng,Qianqian Zhao,Hongyi Ouyang,Shuliang Dou,Jinxin Gu,Jiupeng Zhao,Yao Li
出处
期刊:Materials futures
[IOP Publishing]
日期:2025-07-01
卷期号:4 (3): 035101-035101
被引量:5
标识
DOI:10.1088/2752-5724/adea8a
摘要
Abstract The utilization of W-doped VO 2 (W x V 1− x O 2 ) for dynamic radiative thermal management (DRTM) is a breakthrough in refrigeration technology, gaining attention for its energy efficiency and environmental benefits. The W x V 1− x O 2 -based DRTM holds great promise for passive thermal regulation, but the challenge of synthesizing high-quality crystalline W x V 1− x O 2 films has hindered its widespread application. Herein, we utilize high-power impulse magnetron sputtering (HiPIMS) to deposit highly polycrystalline W x V 1− x O 2 films with enhanced phase-transition properties. Through thermal excitation, the manipulation of electrons from the d // bonding state to the π * anti-bonding state in W x V 1− x O 2 film is observed to modify the dynamic infrared radiation, potentially disrupting V–V dimers via the collapse of molecular orbitals. The resulting polycrystalline W x V 1− x O 2 film enables the achievement of a DRTM reflector with a considerable dynamic range of thermal emissivity tunability, spanning from 0.25 to 0.87 within the 7–13 μ m. Comprehensive energy calculations demonstrate that, by using high-emissivity radiative cooling material as the baseline, our passive temperature-responsive DRTM roof can reduce heating, ventilation, and air conditioning energy consumption in buildings by over 8% across five global climate zones. This work not only advances the fabrication of high-performance W x V 1− x O 2 films but also paves the way for sustainable energy solutions in the face of global climate challenges.
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