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可 3D 打印光致变色分子材料用于可逆信息存储。

3D-Printable Photochromic Molecular Materials for Reversible Information Storage.

机构信息

Faculty of Engineering and School of Chemistry, University of Nottingham, University Park, Nottingham, NG7 2RD, UK.

Faculty of Engineering, University of Nottingham, University Park, Nottingham, NG7 2RD, UK.

出版信息

Adv Mater. 2018 Jun;30(26):e1800159. doi: 10.1002/adma.201800159. Epub 2018 Apr 30.

Abstract

The formulation of advanced molecular materials with bespoke polymeric ionic-liquid matrices that stabilize and solubilize hybrid organic-inorganic polyoxometalates and allow their processing by additive manufacturing, is effectively demonstrated. The unique photo and redox properties of nanostructured polyoxometalates are translated across the scales (from molecular design to functional materials) to yield macroscopic functional devices with reversible photochromism. These properties open a range of potential applications including reversible information storage based on controlled topological and temporal reduction/oxidation of pre-formed printed devices. This approach pushes the boundaries of 3D printing to the molecular limits, allowing the freedom of design enabled by 3D printing to be coupled with the molecular tuneability of polymerizable ionic liquids and the photoactivity and orbital engineering possible with hybrid polyoxometalates.

摘要

通过定制聚合物离子液体基质来构建先进的分子材料,可有效稳定并溶解杂化有机-无机多金属氧酸盐,并通过增材制造进行加工。该方法具有独特的纳米结构多金属氧酸盐的光和氧化还原性能,可在不同尺度上(从分子设计到功能材料)转化,从而产生具有可逆光致变色性能的宏观功能器件。这些性能为多种潜在应用开辟了道路,包括基于预先形成的打印器件的可控拓扑和时空调控还原/氧化的可逆信息存储。这种方法将 3D 打印的边界推向了分子极限,使 3D 打印的设计自由度与可聚合离子液体的分子可调性以及杂化多金属氧酸盐的光活性和轨道工程相结合成为可能。

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