IP Library Granted Patent US 12,391,977
Granted Patent B2
US 12,391,977 · App. 18/080,051 · Granted Aug 19, 2025

Mixed cluster heterometallic metal-organic frameworks for complex optical tags

Inventors: Dorina F. Sava Gallis (Albuquerque, NM); Kimberly S. Butler (Albuquerque, NM)
Assignee: National Technology & Engineering Solutions of Sandia, LLC
C12Q1/6816C09B57/00C09K11/06G01N21/6428G01N33/582C09K2211/182G01N2021/6439
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Quick Facts
Patent No.
US 12,391,977
App. No.
18/080,051
Granted
Aug 19, 2025
Kind
B2
Abstract

A rapid and facile design strategy to create a highly complex optical tag with programmable, multimodal photoluminescent properties is described. This is achieved via intrinsic and biomolecule-fluorophore hidden signatures. As a first covert feature of the tag, an intricate novel heterometallic near-infrared (NIR) emitting mesoporous metal-organic framework (MOF) was synthesized comprising homometallic hexanuclear clusters based on Nd and Yb. To generate controlled, multimodal, and tailorable emission with difficult to counterfeit features, the NIR emissive MOF was post-synthetically modified via a fluorescent biomolecule labeling design strategy. The surface attachment of several distinct fluorophores, including the simultaneous attachment of up to three distinct fluorescently labeled DNA oligos was demonstrated, with excitation and emission properties across the visible spectrum (480-800 nm). The DNA inclusion as a secondary covert element in the tag was demonstrated via detection of SYBR Gold dye association.

Claims (25)

1. A method for synthesizing an optical tag, comprising:

mixing a first rare earth salt, at least one other salt of a different rare earth, a carboxylic acid-based linker, and a modulator, in a solvent;

reacting the mixture at a sufficiently high temperature and time for the mixture to form a reaction product; and

cooling the reaction product to precipitate crystals of a mixed cluster heterometallic metal-organic framework comprising a first rare earth-based cluster and at least one other chemically distinct rare earth-based cluster connected by the carboxylic-acid based linkers.

2. The method of claim 1 , wherein the first rare earth salt and the at least one other salt of a different rare earth comprises a rare earth nitrate or rare earth chloride.

3. The method of claim 2 , wherein the first rare earth salt comprises neodymium nitrate hexahydrate, the at least one other salt of a different rare earth comprises ytterbium nitrate pentahydrate, the first rare earth-based cluster comprises a ytterbium-based hexanuclear cluster and the at least one other chemically distinct rare earth-based cluster comprises a neodymium-based hexanuclear cluster.

4. The method of claim 1 , wherein the carboxylic-acid based linker comprises a di-, tri-, tetra-, or hexacarboxylic acid.

5. The method of claim 4 , wherein the carboxylic-acid based linker comprises 1,2,4,5-tetrakis (4-carboxylphenyl) benzene.

6. The method of claim 1 , wherein the modulator comprises a fluorinated carboxylic acid.

7. The method of claim 6 , wherein the fluorinated carboxylic acid comprises a fluorobenzoic acid or a fluoroacetic acid.

8. The method of claim 1 , wherein the solvent comprises dimethylformamide, diethylformamide, or dimethylacetamide.

9. The method of claim 1 , wherein at least one of the first rare earth-based cluster or the at least one other chemically distinct rare earth-based cluster is photoluminescent.

10. The method of claim 1 , further comprising functionalizing a surface of the mixed cluster heterometallic metal-organic framework with one or more phospho-terminated biological molecules.

11. The method of claim 10 , wherein the one or more phospho-terminated biological molecules comprises a nucleic acid, protein, or peptide.

12. The method of claim 10 , wherein the one or more phospho-terminated biological molecules is labeled with one or more fluorophores.

13. The method of claim 11 , further comprising labeling the nucleic acid-functionalized mixed cluster heterometallic metal-organic framework with a dye.

14. The method of claim 13 , wherein the dye comprises SYBR Gold dye.

15. An optical tag comprising a mixed cluster heterometallic metal-organic framework comprising a first rare earth-based cluster and at least one other chemically distinct rare earth-based cluster connected by a carboxylic-acid based linker.

16. The optical tag of claim 15 , wherein the first rare earth-based cluster comprises a ytterbium-based hexanuclear cluster and the at least one other chemically distinct rare earth-based cluster comprises a neodymium-based hexanuclear cluster and the carboxylic-acid based linker comprises a di-, tri-, tetra-, or hexacarboxylic acid.

17. The optical tag of claim 15 , wherein at least one of the first rare earth-based cluster or the at least one other chemically distinct rare earth-based cluster is photoluminescent.

18. The optical tag of claim 15 , wherein the mixed cluster heterometallic metal-organic framework is functionalized with one or more phospho-terminated biological molecules.

19. The optical tag of claim 18 , wherein the one or more phospho-terminated biological molecules comprises a nucleic acid, protein, or peptide.

20. The optical tag of claim 18 , wherein at least one of the one or more phospho-terminated biological molecules is labeled with a fluorophore.

21. The optical tag of claim 18 , wherein the one or more phospho-terminated biological molecules comprises a nucleic acid that is labeled with a dye.

22. The optical tag of claim 21 , wherein the dye comprises SYBR Gold dye.

Assignments (3)
CONFIRMATORY LICENSE Recorded Aug 27, 2025
From: NATIONAL TECHNOLOGY & ENGINEERING SOLUTIONS OF SANDIA, LLC
To: NNSA
Reel/Frame 072645/0878 →
CONFIRMATORY LICENSE Recorded Jan 25, 2023
From: NATIONAL TECHNOLOGY & ENGINEERING SOLUTIONS OF SANDIA, LLC
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 062486/0383 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 19, 2023
From: SAVA GALLIS, DORINA F.; BUTLER, KIMBERLY S.
To: NATIONAL TECHNOLOGY & ENGINEERING SOLUTIONS OF SANDIA, LLC
Reel/Frame 062426/0518 →
Continuity (3)
Continuation In Part 17479710 · Sep 20, 2021
Provisional Application 63086419 · Oct 1, 2020
Related Publication 20230115755A1 · Apr 13, 2023
References Cited (42)
US 8742152B2 · Yaghi · 2014 [cited by examiner]
US 8916722B2 · Yaghi · 2014 [cited by examiner]
US 20070141727A1 · Huang · 2007 [cited by examiner]
US 20120039810A1 · Gorenstein · 2012 [cited by examiner]
US 20160047816A1 · Stern · 2016 [cited by examiner]
US 20210146378A1 · Hinestrosa Salazar · 2021 [cited by examiner]
Griffin et al., Uncovering the Structural Diversity of Y(III) Naphthalene-2,6-Dicarboxylate MOFs through Coordination Modulation, Frontiers in Chemistry 7:36, published: Jan. 31, 2019, doi: 10.3389/fchem.2019.00036, www… [cited by examiner]
Sava Gallis, D. et al., “Programmable Photoluminescence via Intrinsic and DNA-Fluorophore Association in a Mixed Cluster Heterometallic MOF,” ACS Applied Materials Interfaces, 2022, vol. 14, pp. 10566-10576. [cited by applicant]
White, K. A. et al., “Near-Infrared Luminescent Lanthanide MOF Barcodes,” Journal of the American Chemical Society, 2009, vol. 131, pp. 18069-18071. [cited by applicant]
Wang, J. et al., “Multi-Emissive Lanthanide-Based Coordination Polymers for Potential Application as Luminescent Bar-Codes,” Inorganic Chemistry, 2019, vol. 58, pp. 2659-2668. [cited by applicant]
Zhang, H-B et al., “Digital Controlled Luminescent Emission via Patterned Deposition of Lanthanide Coordination Compounds,” ACS Applied Materials Interfaces, 2014, vol. 6, pp. 12594-12599. [cited by applicant]
Deneff, J. I. et al. “Encoding Multilayer Complexity in Anti-Counterfeiting Heterometallic MOF-Based Optical Tags,” Angewandte Chemie International Edition, 2021, vol. 60, pp. 1203-1211. [cited by applicant]
Gao, Z. et al., “Spatially Responsive Multicolor Lanthanide-MOF Heterostructures for Covert Photonic Barcodes,” Angewandte Chemie International Edition, 2020, vol. 59, pp. 19060-19064. [cited by applicant]
Abednatanzi, S. et al., “Mixed-Metal Metal-Organic Frameworks,” Chem. Soc. Rev., 2019, vol. 48, pp. 2535-2565. [cited by applicant]
Massomi, M. et al., “Mixed Metal MOFs: Unique Opportunities in Metal-Organic Framework (MOF) Functionality and Design,” Angewandte Chemie International Edition, 2019, vol. 58, pp. 15188-15205. [cited by applicant]
Xue, D-H. et al., “Tunable Rare-Earth fcu-MOFs: A Platform for Systematic Enhancement of CO [cited by applicant]
Sava Gallis, D. et al., “Multifunctional, Tunable Metal-Organic Framework Materials Platform for Bioimaging Applications,” ACS Applied Materials Interfaces, 2017, vol. 9, pp. 22268-22277. [cited by applicant]
Luebke, R. et al., “Versatile Rare Earth Hexanuclear Clusters for the Design and Synthesis of Highly-Connected ftw-MOFs,” Chemical Science, 2015, vol. 6, pp. 4095-4102. [cited by applicant]
Sava Gallis, D. et al., “NOx Adsorption and Optical Detection in Rare Earth Metal-Organic Frameworks,” ACS Applied Materials Interfaces, 2019, vol. 11, pp. 43270-43277. [cited by applicant]
Butler, K. S. et al., “Antibody Targeted Metal-Organic Frameworks for Bioimaging Applications,” ACS Applied Materials Interfaces, 2020, vol. 12, pp. 31217-31224. [cited by applicant]
Henkelis, S. E. et al., “Kinetically Controlled Linker Binding in Rare Earth-2,5-Dihydroxyterepthalic Acid Metal-Organic Frameworks and Its Predicted E ects on Acid Gas Adsorption,” ACS Applied Materials Interfaces, 202… [cited by applicant]
Guillerm, V. et al., “Discovery and introduction of a (3,18)-connected net as an ideal blueprint for the design of metal-organic frameworks,” Nature Chemistry, 2014, vol. 6, pp. 673-680. [cited by applicant]
Abdulhalim, R. G. et al., “A Fine-Tuned Metal-Organic Framework for Autonomous Indoor Moisture Control,” Journal of the American Chemical Societyy, 2017, vol. 139, pp. 10715-10722. [cited by applicant]
Quezanda-Novoa, V. et al., “Building a shp: A Rare-Earth Metal-Organic Framework and Its Application in a Catalytic Photooxidation Reaction,” Chemistry of Materials, 2021, vol. 33, pp. 4163-4169. [cited by applicant]
Alezi, D. et al., “Quest for Highly Connected Metal-Organic Framework Platforms: Rare-Earth Polynuclear Clusters Versatility Meets Net Topology Needs,” Journal of the American Chemical Society, 2015, vol. 137, pp. 5421-… [cited by applicant]
Cheisson, T. and Schelter, E. J., “Rare Earth Elements: Mendeleev's Bane, Modern Marvels,” Science, 2019, vol. 363, pp. 489-493. [cited by applicant]
Zucchi, G. et al., “Structural Diversity in Neodymium Bipyrimidine Compounds with Near Infrared Luminescence: from Mono- and Binuclear Complexes to Metal-Organic Frameworks,” Inorganic Chemistry, 2008, vol. 47, pp. 1039… [cited by applicant]
Su, K. et al., “Syntheses, Structures, Luminescence and Magnetic Properties of Three High-Nuclearity Neodymium Compounds Based on Mixed Sulfonylcalix[4]arene-phosphonate Ligands,” CrystEngComm, 2016, vol. 18, pp. 4921-4… [cited by applicant]
Sava Gallis, D. et al., “Biocompatible MOFs with High Absolute Quantum Yield for Bioimaging in the Second Near Infrared Window,” CrystEngComm, 2018, vol. 20, pp. 5919-5924. [cited by applicant]
Wang, Y. et al., “Metal-Organic Frameworks for Virus Detection,” Biosensors and Bioelectronics, 2020, vol. 169, 112604. [cited by applicant]
Wu, F. et al., “Recent Advances in Fluorescence Sensors Based on DNA-MOF Hybrids,” Luminescence, 2020, vol. 35, pp. 440-446. [cited by applicant]
Zhuang, J. et al., “Integration of Biomolecules with Metal-Organic Frameworks,” Small, 2017, vol. 13, 1700880. [cited by applicant]
Morris, W. et al., “Nucleic Acid-Metal Organic Framework (MOF) Nanoparticle Conjugates,” Journal of the American Chemical Society, 2014, vol. 136, pp. 7261-7264. [cited by applicant]
Kahn, J.S. et al., “Stimuli-Responsive DNA-Functionalized Metal-Organic Frameworks (MOFs),” Advanced Materials, 2017, vol. 29, 1602782. [cited by applicant]
Ning, W. et al., “Imparting Designer Biorecognition Functionality to Metal-Organic Frameworks by a DNA-Mediated Surface Engineering Strategy,” Small, 2018, vol. 14, 1703812. [cited by applicant]
Wang, Z. et al., “Organelle-Specific Triggered Release of Immunostimulatory Oligonucleotides from Intrinsically Coordinated DNA-Metal-Organic Frameworks with Soluble Exoskeleton,” Journal of the American Chemical Societ… [cited by applicant]
Wang, S. et al., “General and Direct Method for Preparing Oligonucleotide-Functionalized Metal-Organic Framework Nanoparticles,” Journal of the American Chemical Society, 2017, vol. 139, pp. 9827-9830. [cited by applicant]
Wang, S. et al., “DNA-Functionalized Metal-Organic Framework Nanoparticles for Intracellular Delivery of Proteins,” Journal of the American Chemical Society, 2019, vol. 141, pp. 2215-2219. [cited by applicant]
Micklitz, W. and Lippard, S. J., “A Novel Hexairon (III) Aggregate Prepared for a Basic Iron (III) Benzoate. Possible Building Blocks in Ferritin Core Foundation.” Inorganic Chemistry, 1988, vol. 27, pp. 3067-3069. [cited by applicant]
Ehsan, M. A. et al., “Deposition of Iron Titanate/Titania Ceramic Composite Thin Films from a Single Molecular,” precursor, Inorganica Chimica Acta, 2011, vol. 376, pp. 189-194. [cited by applicant]
Baca, S. G. et al., “Avoiding Magnetochemical Overparametrization, Exemplified by One-Dimensional Chains of Hexanuclear Iron(III) Pivalate Clusters,” Inorganic Chemistry, 2013, vol. 52, pp. 4154-4156. [cited by applicant]
Morris, W. et al., “Synthesis, Structure, and Metalation of Two New Highly Porous Zirconium Metal-Organic Frameworks,” Inorganic Chemistry, 2012, vol. 51, pp. 6443-6445. [cited by applicant]