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纳米晶玻璃复合材料中近红外和可见光可调透射率。

Tunable near-infrared and visible-light transmittance in nanocrystal-in-glass composites.

机构信息

The Molecular Foundry, Lawrence Berkeley National Laboratory, 1 Cyclotron Road, Berkeley, California 94720, USA.

出版信息

Nature. 2013 Aug 15;500(7462):323-6. doi: 10.1038/nature12398.

Abstract

Amorphous metal oxides are useful in optical, electronic and electrochemical devices. The bonding arrangement within these glasses largely determines their properties, yet it remains a challenge to manipulate their structures in a controlled manner. Recently, we developed synthetic protocols for incorporating nanocrystals that are covalently bonded into amorphous materials. This 'nanocrystal-in-glass' approach not only combines two functional components in one material, but also the covalent link enables us to manipulate the glass structure to change its properties. Here we illustrate the power of this approach by introducing tin-doped indium oxide nanocrystals into niobium oxide glass (NbOx), and realize a new amorphous structure as a consequence of linking it to the nanocrystals. The resulting material demonstrates a previously unrealized optical switching behaviour that will enable the dynamic control of solar radiation transmittance through windows. These transparent films can block near-infrared and visible light selectively and independently by varying the applied electrochemical voltage over a range of 2.5 volts. We also show that the reconstructed NbOx glass has superior properties-its optical contrast is enhanced fivefold and it has excellent electrochemical stability, with 96 per cent of charge capacity retained after 2,000 cycles.

摘要

非晶态金属氧化物在光学、电子和电化学器件中很有用。这些玻璃中的键合排列在很大程度上决定了它们的性质,但仍然难以以可控的方式操纵它们的结构。最近,我们开发了将共价键合到非晶材料中的纳米晶体纳入的合成方案。这种“纳米晶-玻璃”的方法不仅将两种功能组件结合在一种材料中,而且共价键还使我们能够操纵玻璃结构来改变其性质。在这里,我们通过将锡掺杂的氧化铟纳米晶体引入氧化铌玻璃 (NbOx) 来说明这种方法的强大功能,从而实现了与纳米晶体相连的新的非晶态结构。由此产生的材料表现出以前未实现的光学开关行为,这将能够通过在 2.5 伏的范围内改变施加的电化学电压来动态控制窗户的太阳辐射透过率。这些透明薄膜可以通过改变施加的电化学电压在 2.5 伏的范围内选择性和独立地阻挡近红外和可见光。我们还表明,重构的 NbOx 玻璃具有优异的性能-其光学对比度提高了五倍,并且具有出色的电化学稳定性,在 2000 次循环后保留了 96%的电荷容量。

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