Suppr超能文献

通信超粒子以实现感知性、信息提供性物质。

Communicating Supraparticles to Enable Perceptual, Information-Providing Matter.

作者信息

Reichstein Jakob, Müssig Stephan, Wintzheimer Susanne, Mandel Karl

机构信息

Department of Chemistry and Pharmacy, Inorganic Chemistry, Friedrich-Alexander-Universität Erlangen-Nürnberg (FAU), Egerlandstraße 1, D-91058, Erlangen, Germany.

Fraunhofer-Institute for Silicate Research ISC, Neunerplatz 2, D-97082, Würzburg, Germany.

出版信息

Adv Mater. 2023 Dec;35(49):e2306728. doi: 10.1002/adma.202306728. Epub 2023 Oct 2.

Abstract

Materials are the fundament of the physical world, whereas information and its exchange are the centerpieces of the digital world. Their fruitful synergy offers countless opportunities for realizing desired digital transformation processes in the physical world of materials. Yet, to date, a perfect connection between these worlds is missing. From the perspective, this can be achieved by overcoming the paradigm of considering materials as passive objects and turning them into perceptual, information-providing matter. This matter is capable of communicating associated digitally stored information, for example, its origin, fate, and material type as well as its intactness on demand. Herein, the concept of realizing perceptual, information-providing matter by integrating customizable (sub-)micrometer-sized communicating supraparticles (CSPs) is presented. They are assembled from individual nanoparticulate and/or (macro)molecular building blocks with spectrally differentiable signals that are either robust or stimuli-susceptible. Their combination yields functional signal characteristics that provide an identification signature and one or multiple stimuli-recorder features. This enables CSPs to communicate associated digital information on the tagged material and its encountered stimuli histories upon signal readout anywhere across its life cycle. Ultimately, CSPs link the materials and digital worlds with numerous use cases thereof, in particular fostering the transition into an age of sustainability.

摘要

材料是物理世界的基础,而信息及其交换则是数字世界的核心。它们卓有成效的协同作用为在材料的物理世界中实现所需的数字转型过程提供了无数机会。然而,迄今为止,这两个世界之间仍缺乏完美的联系。从这个角度来看,可以通过克服将材料视为被动对象的范式,并将它们转变为具有感知能力、能提供信息的物质来实现这一目标。这种物质能够按需传达相关的数字存储信息,例如其来源、去向、材料类型以及完整性。在此,本文提出了通过整合可定制的(亚)微米级通信超粒子(CSP)来实现具有感知能力、能提供信息的物质的概念。它们由具有光谱可区分信号的单个纳米颗粒和/或(宏观)分子构建块组装而成,这些信号要么稳健,要么对刺激敏感。它们的组合产生功能信号特征,提供识别签名和一个或多个刺激记录器特征。这使得CSP能够在其生命周期内的任何位置进行信号读出时,传达关于标记材料及其遇到的刺激历史的相关数字信息。最终,CSP将材料世界和数字世界及其众多用例联系起来,尤其促进了向可持续发展时代的转变。

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