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High‐Contrast Optical Modulation from Strain‐Induced Nanogaps at 3D Heterogeneous Interfaces

机译:应变诱导的纳米间隙在3D异质界面的高对比度光学调制

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摘要

The realization of high‐contrast modulation in optically transparent media is of great significance for emerging mechano‐responsive smart windows. However, no study has provided fundamental strategies for maximizing light scattering during mechanical deformations. Here, a new type of 3D nanocomposite film consisting of an ultrathin (≈60 nm) Al O nanoshell inserted between the elastomers in a periodic 3D nanonetwork is proposed. Regardless of the stretching direction, numerous light‐scattering nanogaps (corresponding to the porosity of up to ≈37.4 vol%) form at the interfaces of Al O and the elastomers under stretching. This results in the gradual modulation of transmission from ≈90% to 16% at visible wavelengths and does not degrade with repeated stretching/releasing over more than 10 000 cycles. The underlying physics is precisely predicted by finite element analysis of the unit cells. As a proof of concept, a mobile‐app‐enabled smart window device for Internet of Things applications is realized using the proposed 3D nanocomposite with successful expansion to the 3 × 3 in. scale.
机译:在光学透明介质中实现高对比度调制对于新兴的机械响应式智能窗户具有重要意义。但是,没有研究提供基本的策略来最大化机械变形过程中的光散射。在此,提出了一种新型3D纳米复合膜,该膜由在周期性3D纳米网络中的弹性体之间插入的超薄(≈60nm)Al O纳米壳组成。无论拉伸方向如何,在拉伸下,Al O和弹性体的界面都会形成许多光散射纳米间隙(对应于约37.4 vol%的孔隙率)。这导致可见光波长处的透射率从≈90%逐渐调制到16%,并且在超过10,000个循环中反复拉伸/释放不会降低。通过对晶胞的有限元分析可以精确地预测基础物理。作为概念证明,使用建议的3D纳米复合材料实现了用于物联网应用的支持移动应用的智能窗口设备,并将其成功扩展到3×3英寸规模。

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