PEER-REVIEWED PUBLICATION

2026

Photoluminescent BNCQD-Loaded Hydrogels for Real-Time Sensing, pH-Responsive Drug Release, and UV Protection

Marvi PK, Das P, et al.

ACS Applied Polymer Materials

McMaster University, University of Waterloo

RESEARCH SUMMARY
This study developed multifunctional photoluminescent hydrogels by integrating phenol-functionalized boron nitride carbon quantum dots (BNCQDs) into a photocurable semi-interpenetrating polymer network (semi-IPN) composed of methacrylated carboxymethyl cellulose (M-CMC) and polyacrylamide (PAM). Water-derived BNCQDs exhibited strong blue-green emission (~510 nm), temperature-dependent fluorescence behavior, and intrinsic antioxidant/antibacterial activity; embedding these nanodots into the hydrogel reinforced the network via noncovalent interactions and tuned pore architecture, swelling, and viscoelasticity. Among formulations, an intermediate BNCQD loading (PMC2) provided the best balance of mechanics, microporosity, and optical performance, enabling high UV attenuation (reported 93.2% UVA, 98.2% UVB, 99.8% UVC) while maintaining partial visible transparency. The optimized hydrogel enabled pH-responsive release of tetracycline over ~3 days (faster release at alkaline pH relevant to chronic/infected wounds), and its intrinsic fluorescence allowed real-time optical tracking of drug release with strong linear correlations versus cumulative release at multiple pH conditions. The material also functioned as a broad-range pH sensor (reported linear response across acidic-to-basic conditions). Finally, digital light processing (DLP) printing demonstrated high-fidelity, customizable microporous patches, supporting translation toward smart wound dressings and multifunctional regenerative biomaterials.

CELLSCALE INSTRUMENT USED

UniVert

Uniaxial compression mechanical testing of the PMC-series hydrogels was performed using a CellScale UniVert tensile/compression testing machine equipped with a 1 N load cell. Disk-shaped hydrogel specimens were tested in the swollen state (pre-equilibrated in PBS prior to characterization), and were compressed at a constant crosshead speed of 100 mm/min until a predefined strain limit was reached while recording stress–strain curves to quantify how BNCQD loading altered mechanical robustness (including ultimate compressive strength trends across PMC0–PMC3).
AUTHORS

Parham Khoshbakht Marvi, Poushali Das, Sayan Ganguly, Xiaowu Shirley Tang, Seshasai Srinivasan, Amin Reza Rajabzadeh.

PUBLICATION DETAILS
JOURNAL

ACS Applied Polymer Materials

YEAR

2026

INSTITUTIONS

McMaster University, University of Waterloo

COUNTRIES

Canada

INSTRUMENT USED

UniVert

TESTING METHODS

Compression TestingHydrated and Temperature Controlled Testing

RESEARCH APPLICATIONS

3D Bioprinting & Bioink Materials TestingDrug Screening & Drug Delivery MechanicsHydrogel Mechanical TestingSkin and Wound Healing BiomechanicsStimuli Responsive Hydrogels Characterization

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ACS Applied Polymer Materials

UniVert

Compression TestingHydrated and Temperature Controlled Testing

3D Bioprinting & Bioink Materials TestingDrug Screening & Drug Delivery MechanicsHydrogel Mechanical TestingSkin and Wound Healing BiomechanicsStimuli Responsive Hydrogels Characterization

2026

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