Materials & Energyarticle2026-08-18

Supramolecular Macrocycle–Quantum Dot Interfaces for Molecular Sensing and Bioimaging

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Abstract

Abstract Quantum dots (QDs) provide bright optical, electrochemiluminescent, and electrochemical readouts for molecular sensing and bioimaging, but by themselves they do not provide selectivity, matrix tolerance, or a reliable mechanistic assignment. Supramolecular macrocycles can address these limitations by adding cavity-defined binding, guest exchange, analyte preconcentration, redox activity, interfacial organization, or biological targeting. This review critically evaluates porphyrin-, phthalocyanine-, calixarene-, pillararene-, and cyclodextrin–QD interfaces. Particular attention is paid to how the intact macrocycle and the QD jointly create function, how FRET, PET, inner-filter effects, static or dynamic quenching, aggregation, host–guest displacement, ECL, and electrochemical pathways can be distinguished, and whether analytical claims survive real-matrix or cellular validation. Quantitative sensing performance is compared where reported, and macrocycle recognition is positioned against antibody-, aptamer-, and molecularly imprinted polymer-functionalized QDs. Bioimaging examples are retained only when a spectrally resolved QD signal supports localization, carrier tracking, release monitoring, or image-guided therapy. On this basis, this study proposes application-specific choices grounded in cavity–target matching, interfacial stability, mechanism-specific controls, and evidence that the hybrid adds value beyond either component alone.

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View paper (DOI)OpenAlexACS Applied Nano MaterialsPublished 2026-08-18

Authors: Fatma Yelda Ünlü, İbrahim Özçeşmeci, Caner Ünlü

Institutions: Istanbul Technical University