论文标题
可持续光学的二维功能矿物
Two-dimensional Functional Minerals for Sustainable Optics
论文作者
论文摘要
光学设备是我们生活中的关键组成部分,如今,有机液晶被广泛用于减少人类烙印。但是,这项技术仍然具有相对较高的成本,毒性和其他环境影响,无法完全满足未来可持续社会的需求。在这里,我们描述了一种用于颜色可调的光学设备的替代方法,该方法基于可持续的无机液体晶体,这些液晶源自本质上丰富的二维矿物质材料。 ver石的典型二维矿物质是通过绿色方法大规模生产的,具有> 103的尺寸与厚度比,平面内磁性> 10 emu G-1和> 3 eV的光带隙。这些特征赋予二维ver岩具有敏感的磁丝离响应,该响应比有机物大的几个数量级,并且是广谱调制的能力。因此,我们的发现允许制造具有低或零能量消耗的各种铬酸设备,可用于可持续光学元件。
Optical device is a key component in our lives and organic liquid crystals are nowadays widely used to reduce human imprint. However, this technology still suffers from relatively high costs, toxicity and other environmental impacts, and cannot fully meet the demand of future sustainable society. Here we describe an alternative approach to colour-tuneable optical devices, which is based on sustainable inorganic liquid crystals derived from two-dimensional mineral materials abundant in nature. The prototypical two-dimensional mineral of vermiculite is massively produced by a green method, possessing size-to-thickness ratios of >103, in-plane magnetisation of >10 emu g-1, and an optical bandgap of >3 eV. These characteristics endow two-dimensional vermiculite with sensitive magneto-birefringence response, which is several orders of magnitude larger than organic counterparts, as well as capability of broad-spectrum modulation. Our finding consequently permits the fabrication of various chromic devices with low or even zero-energy consumption, which can be used for sustainable optics.