Hidden Structural Colors from Bistable, Electrically Driven Covalent Organic Framework Photonic Assemblies for Secure Optical Encoding

Author(s)
Tolga Zorlu, Flora Schöfbeck, Julian Lemmel, Daoming Sun, Tanja Eder, Michael R. Reithofer, Jia Min Chin
Abstract

Optical encryption using nanostructured materials provides a powerful route for secure data encoding. In this work, an electrically reconfigurable colloidal photonic platform based on covalent organic framework (COF) particles is described, enabling dynamic and bistable data encryption. Spatially controlled electrophoretic assembly of monodisperse COF particles within patterned cells produces Bragg reflections that are visible only under bright-field (BF) microscopy as strong broadband scattering from nanoscale particle surface roughness conceals the encoded states from the naked eye. By tuning the synthesis time, the particle surface roughness and, thus, the degree of concealment can be precisely controlled. Unlike conventional optical systems, where scattering degrades visibility, we report it as an intrinsic security feature, transforming a loss mechanism into a tool for optical masking. The demonstrated platform combines electrical addressability, conditional optical visibility, and algorithmic decoding to deliver a compact, multifactor encryption system. These results demonstrate colloidal COF dispersions as a versatile class of photonic materials for secure displays, anticounterfeiting, and adaptive optical communication technologies.

Organisation(s)
Department of Functional Materials and Catalysis, Department of Inorganic Chemistry
External organisation(s)
Vienna Doctoral School in Chemistry (DoSChem), Technische Universität Wien, Wolfgang Pauli Institut
Journal
ACS Nano
Volume
20
Pages
1555-1565
No. of pages
11
ISSN
1936-0851
DOI
https://doi.org/10.1021/acsnano.5c18545
Publication date
01-2026
Peer reviewed
Yes
Austrian Fields of Science 2012
104011 Materials chemistry, 104017 Physical chemistry
Keywords
ASJC Scopus subject areas
General Materials Science, General Engineering, General Physics and Astronomy
Portal url
https://ucrisportal.univie.ac.at/en/publications/f67e7655-42e2-46a7-aebe-1ef769be48ca