Deneff Jacob I, Butler Kimberly S, Rohwer Lauren E S, Pearce Charles J, Valdez Nichole R, Rodriguez Mark A, Luk Ting S, Sava Gallis Dorina F
Nanoscale Sciences Department, Sandia National Laboratories, Albuquerque, NM, 87185, USA.
Molecular and Microbiology Department, Sandia National Laboratories, Albuquerque, NM, 87185, USA.
Angew Chem Int Ed Engl. 2021 Jan 18;60(3):1203-1211. doi: 10.1002/anie.202013012. Epub 2020 Dec 14.
Optical tags provide a way to quickly and unambiguously identify valuable assets. Current tag fluorophore options lack the tunability to allow combined methods of encoding in a single material. Herein we report a design strategy to encode multilayer complexity in a family of heterometallic rare-earth metal-organic frameworks based on highly connected nonanuclear clusters. To impart both intricacy and security, a synergistic approach was implemented resulting in both overt (visible) and covert (near-infrared, NIR) properties, with concomitant multi-emissive spectra and tunable luminescence lifetimes. Tag authentication is validated with a variety of orthogonal detection methodologies. Importantly, the effect induced by subtle compositional changes on intermetallic energy transfer, and thus on the resulting photophysical properties, is demonstrated. This strategy can be widely implemented to create a large library of highly complex, difficult-to-counterfeit optical tags.
光学标签提供了一种快速且明确地识别有价值资产的方法。目前的标签荧光团选项缺乏可调节性,无法在单一材料中实现组合编码方法。在此,我们报告一种设计策略,用于在基于高度连接的九核簇的异金属稀土金属有机框架家族中编码多层复杂性。为了赋予复杂性和安全性,实施了一种协同方法,产生了显性(可见)和隐性(近红外,NIR)特性,同时具有多发射光谱和可调谐的发光寿命。标签认证通过多种正交检测方法进行验证。重要的是,证明了细微的成分变化对金属间能量转移以及由此产生的光物理性质的影响。该策略可广泛应用于创建大量高度复杂、难以伪造的光学标签库。