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全溶液处理混合微纳复合薄膜中可见光和近红外光透过率的双波段调制。

Dual-Band Modulation of Visible and Near-Infrared Light Transmittance in an All-Solution-Processed Hybrid Micro-Nano Composite Film.

机构信息

Department of Materials Science and Engineering, College of Engineering, Peking University , Beijing 100871, People's Republic of China.

Department of Materials Physics and Chemistry, School of Materials Science and Engineering, University of Science and Technology Beijing , Beijing 100083, People's Republic of China.

出版信息

ACS Appl Mater Interfaces. 2017 Nov 22;9(46):40810-40819. doi: 10.1021/acsami.7b11582. Epub 2017 Nov 10.

Abstract

Smart windows with controllable visible and near-infrared light transmittance can significantly improve the building's energy efficiency and inhabitant comfort. However, most of the current smart window technology cannot achieve the target of ideal solar control. Herein, we present a novel all-solution-processed hybrid micronano composite smart material that have four optical states to separately modulate the visible and NIR light transmittance through voltage and temperature, respectively. This dual-band optical modulation was achieved by constructing a phase-separated polymer framework, which contains the microsized liquid crystals domains with a negative dielectric constant and tungsten-doped vanadium dioxide (W-VO) nanocrystals (NCs). The film with 2.5 wt % W-VO NCs exhibits transparency at normal condition, and the passage of visible light can be reversibly and actively regulated between 60.8% and 1.3% by external applied voltage. Also, the transmittance of NIR light can be reversibly and passively modulated between 59.4% and 41.2% by temperature. Besides, the film also features easy all-solution processability, fast electro-optical (E-O) response time, high mechanical strength, and long-term stability. The as-prepared film provides new opportunities for next-generation smart window technology, and the proposed strategy is conductive to engineering novel hybrid inorganic-organic functional matters.

摘要

具有可控可见光和近红外光透过率的智能窗户可以显著提高建筑的能源效率和居住舒适度。然而,目前大多数智能窗户技术都无法实现理想的太阳能控制目标。在此,我们提出了一种新颖的全溶液处理混合微纳复合智能材料,该材料具有四种光学状态,可以分别通过电压和温度来调节可见光和近红外光的透过率。这种双波段光调制是通过构建一个具有分离相聚合物框架来实现的,其中包含具有负介电常数的微尺寸液晶畴和掺杂钨的氧化钒(W-VO)纳米晶(NCs)。含有 2.5wt%W-VO NCs 的薄膜在正常条件下具有透明性,通过外部施加电压可以将可见光的透过率在 60.8%和 1.3%之间可逆地主动调节。此外,通过温度可以将近红外光的透过率在 59.4%和 41.2%之间可逆地被动调节。此外,该薄膜还具有易于全溶液加工、快速电光(E-O)响应时间、高机械强度和长期稳定性等优点。所制备的薄膜为下一代智能窗户技术提供了新的机会,所提出的策略有助于工程新型的混合无机-有机功能材料。

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