Realizing Sunlight-Induced Efficiently Dynamic Infrared Emissivity Modulation Based on Aluminum-Doped zinc Oxide Nanocrystals.
Yan JiaDongqing LiuDesui ChenYizheng JinYufei GeWenxia ZhangChen ChenBaizhang ChengXinfei WangTianwen LiuMingyang LiMei ZuZi WangHaifeng ChengPublished in: Advanced science (Weinheim, Baden-Wurttemberg, Germany) (2024)
Dynamic manipulation of an object's infrared radiation characteristics is a burgeoning technology with significant implications for energy and information fields. However, exploring efficient stimulus-spectral response mechanism and realizing simple device structures remains a formidable challenge. Here, a novel dynamic infrared emissivity regulation mechanism is proposed by controlling the localized surface plasmon resonance absorption of aluminum-doped zinc oxide (AZO) nanocrystals through ultraviolet photocharging/oxidative discharging. A straightforward device architecture that integrates an AZO nanocrystal film with an infrared reflective layer and a substrate, functioning as a photo-induced dynamic infrared emissivity modulator, which can be triggered by weak ultraviolet light in sunlight, is engineered. The modulator exhibits emissivity regulation amount of 0.72 and 0.61 in the 3-5 and 8-13 µm ranges, respectively. Furthermore, the modulator demonstrates efficient light triggering characteristic, broad spectral range, angular-independent emissivity, and long cyclic lifespan. The modulator allows for self-adaptive daytime radiative cooling and nighttime heating depending on the ultraviolet light in sunlight and O 2 in air, thereby achieving smart thermal management for buildings with zero-energy expenditure. Moreover, the potential applications of this modulator can extend to rewritable infrared displays and deceptive infrared camouflage.
Keyphrases
- oxide nanoparticles
- high glucose
- quantum dots
- optical coherence tomography
- diabetic rats
- healthcare
- computed tomography
- working memory
- magnetic resonance
- mass spectrometry
- physical activity
- oxidative stress
- high resolution
- magnetic resonance imaging
- endothelial cells
- risk assessment
- radiation therapy
- social media
- radiation induced
- contrast enhanced