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Synthesis of Core-shell Lanthanide-doped Upconversion Nanocrystals for Cellular Applications
Published on: November 10, 2017
Scalable synthesis of core-shell MOF single crystals with spatially segregated multicolour luminescence for optical
Renfu Li1,2, Munendra Pal Singh3, Xuan Yang3
1Jiangxi Provincial Key Laboratory of Functional Crystalline Materials Chemistry, Jiangxi University of Science and Technology, Ganzhou 341000, China. jsliao1209@126.com.
Abstract:
The development of millimetre-scale optically resolvable tags that combine information density with mass-producible uniformity is crucial for advanced anti-counterfeiting and colour barcoding. Despite the excellent luminescence tunability of metal-organic framework (MOF) materials, the scalable fabrication of single-crystal MOFs with spatially defined multicolour emission remains a major challenge. Here, we report a scalable solution-phase epitaxial growth strategy to construct multicolour luminescent heterostructures based on uniform Ce3+-MOF (IAM19-1) single crystals. Through sequential and regioselective overgrowth of different emissive lanthanide (e.g., Tb3+, Eu3+) doped MOF shells, we programmatically construct core-shell architectures within individual crystals, where distinct lanthanide-emitting domains (e.g., Tb3+ for green, Eu3+ for red) are programmed with separation distances tailored for optical discrimination. This method overcomes the spatial and scalability limitations of traditional postsynthetic modification routes, yielding more than 0.1 g quantities of single-crystal heterostructures with sharp, well-defined luminescent domains. Under UV excitation (254 nm), these heterostructures exhibit bright, domain-specific multicolour photoluminescence, where each colour corresponds to a pre-defined spatial region. Leveraging this unique spatial-optical coupling feature, we successfully construct a high-capacity optical encoding system for anti-counterfeiting. This work establishes a scalable materials platform for fabricating luminescent millimetre-scale tags with complex, embedded optical information, bridging the gap between bottom-up crystal engineering and practical device applications in security.
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