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Haixin Lei, Liting Xu, Zhenning Yang, Honghao Cao, Mengyang Zhai, Zihang Chen, Haiyan Rebekah Qin, Zhijie Chen
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10.1021/jacs.9b08078 · doi-reference
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10.1021/jacs.5b10266 · doi-reference
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10.1039/d3cs00251a · doi-reference
Porous MOFs with geometric mismatch between trimers and octatopic pyrene-based ligands for low-temperature methane storage
10.1039/d4cc04907a · doi-reference
Metal-adeninate vertices for the construction of an exceptionally porous metal-organic framework
10.1038/ncomms1618 · doi-reference
Cation-Triggered Drug Release from a Porous Zinc–Adeninate Metal–Organic Framework
10.1021/ja902972w · doi-reference
Introduction of Red-Green-Blue Fluorescent Dyes into a Metal–Organic Framework for Tunable White Light Emission
10.1002/adma.201700778 · doi-reference
Tandem Förster Resonance Energy Transfer Induced Luminescent Ratiometric Thermometry in Dye-Encapsulated Biological Metal–Organic Frameworks
10.1002/adom.201801149 · doi-reference
Targeted Construction of Light-Harvesting Metal–Organic Frameworks Featuring Efficient Host–Guest Energy Transfer
10.1021/acsami.7b17755 · doi-reference
Confinement of pyridinium hemicyanine dye within an anionic metal-organic framework for two-photon-pumped lasing
10.1038/ncomms3719 · doi-reference
Förster Energy Transport in Metal–Organic Frameworks Is Beyond Step-by-Step Hopping
10.1021/jacs.6b01345 · doi-reference
Metal–organic framework materials for light-harvesting and energy transfer
10.1039/c4cc09596k · doi-reference
Energy Transfer in Metal–Organic Frameworks for Fluorescence Sensing
10.1021/acsami.1c24759 · doi-reference
Function Decoupling and Modular Platform: Emerging Design Principles for MOF Luminescent Sensing
10.1021/acs.accounts.6c00178 · doi-reference
Lanthanide metal-organic frameworks for luminescent sensing and light-emitting applications
10.1016/j.ccr.2013.10.023 · doi-reference
Near-Infrared Photonic Metal–Organic Frameworks
10.1021/acs.accounts.5c00828 · doi-reference
Discovery of highly fluorescent covalent organic frameworks through AI-assisted iterative experiment–learning cycles
10.1038/s41557-025-01974-x · doi-reference
Let the light be a guide: Chromophore communication in metal-organic frameworks
10.1007/s12274-020-3017-0 · doi-reference
Photophysics Modulation in Photoswitchable Metal–Organic Frameworks
10.1021/acs.chemrev.9b00350 · doi-reference
Full-Color Emissive Zirconium-Organic Frameworks Constructed via in Situ “One-Pot” Single-Site Modification for Tryptophan Detection and Energy Transfer
10.1002/anie.202414026 · doi-reference
Luminescent Functional Metal–Organic Frameworks
10.1021/cr200101d · doi-reference
Luminescent metal–organic frameworks
10.1039/b802352m · doi-reference
Ultrahigh Surface Area Zirconium MOFs and Insights into the Applicability of the BET Theory
10.1021/ja512973b · doi-reference
Ultrahigh Porosity in Metal-Organic Frameworks
10.1126/science.1192160 · doi-reference
A hetero-supermolecular-building-block strategy for the assembly of porous (3,12,24)-connected uru metal–organic frameworks
10.1038/s44160-024-00622-5 · doi-reference
Complexity in Order: High-Porosity Multicomponent Metal–Organic Frameworks for Clean Energy Gas Storage
10.1021/jacs.5c15567 · doi-reference
Reticular Synthesis of High-Connectivity Metal–Organic Frameworks with Kuratowski-Type Building Blocks
10.1021/jacs.5c18835 · doi-reference
Reticular Chemistry with π-Extended PrismCage Building Units
10.31635/ccschem.026.202607596 · doi-reference
The Chemistry and Applications of Metal-Organic Frameworks
10.1126/science.1230444 · doi-reference
Balancing volumetric and gravimetric uptake in highly porous materials for clean energy
10.1126/science.aaz8881 · doi-reference
Access to Highly Efficient Energy Transfer in Metal–Organic Frameworks via Mixed Linkers Approach
10.1021/jacs.0c02007 · doi-reference
Self-Assembly Strategies for Integrating Light Harvesting and Charge Separation in Artificial Photosynthetic Systems
10.1021/ar9001735 · doi-reference
Pyrene-Based Materials for Organic Electronics
10.1021/cr100428a · doi-reference
Dendrimers Designed for Functions: From Physical, Photophysical, and Supramolecular Properties to Applications in Sensing, Catalysis, Molecular Electronics, Photonics, and Nanomedicine
10.1021/cr900327d · doi-reference
Discrete Cyclic Porphyrin Arrays as Artificial Light-Harvesting Antenna
10.1021/ar9001697 · doi-reference