[1] | Yaghi O M,Li G,Li H.Selective Binding and Removal of Guests in a Microporous Metal-Organic Framework[J]. Nature,1995,378(6558):703-706. | [2] | Wang Y,Zhao M,Ping J,et al. Bioinspired Design of Ultrathin 2D Bimetallic Metal-Organic Framework Nanosheets Used as Biomimetic Enzymes[J]. Adv Mater,2016,28(21):4149-4155. | [3] | Wee L H,Meledina M,Turner S,et al. 1D-2D-3D Transformation Synthesis of Hierarchical Metal-Organic Framework Adsorbent for Multicomponent Alkane Separation[J]. J Am Chem Soc,2017,139(2):819-828. | [4] | Zhu L,Liu X Q,Jiang H L,et al. Metal-Organic Frameworks for Heterogeneous Basic Catalysis[J]. Chem Rev,2017,117(12):8129-8176. | [5] | Wang D,Agnew D W,Yu X,et al. A Metal-Organic Framework with Exceptional Activity for C-H Bond Amination[J]. Angew Chem Int Ed,2018,57(2):511-515. | [6] | Li B,Wen H M,Cui Y,et al. Emerging Multifunctional Metal-Organic Framework Materials[J]. Adv Mater,2016,28(40):8819-8860. | [7] | Li B,Cui X,O'Nolan D,et al. An Ideal Molecular Sieve for Acetylene Removal from Ethylene with Record Selectivity and Productivity[J]. Adv Mater,2017,29(47):1704210-1704216. | [8] | Bai Y,Dou Y,Xie L H,et al. Zr-Based Metal-Organic Frameworks:Design, Synthesis, Structure, and Applications[J]. Chem Soc Rev,2016,45(8):2327-2367. | [9] | Teplensky M H,Fantham M,Li P,et al. Temperature Treatment of Highly Porous Zirconium-Containing Metal-Organic Frameworks Extends Drug Delivery Release[J]. J Am Chem Soc,2017,139(22):7522-7532. | [10] | Yu J,Cui Y,Wu C D,et al. Two-Photon Responsive Metal-Organic Framework[J]. J Am Chem Soc,2015,137(12):4026-4029. | [11] | He H,Ma E,Cui Y,et al. Polarized Three-Photon-Pumped Laser in a Single MOF Microcrystal[J]. Nat Commun,2016,7:11087-11094. | [12] | Cui Y,Yue Y,Qian G,et al. Luminescent Functional Metal-Organic Frameworks[J]. Chem Rev,2012,112(2):1126-1162. | [13] | Zhang Y,Yuan S,Day G,et al. Luminescent Sensors Based on Metal-Organic Frameworks[J]. Coord Chem Rev,2018,354:28-45. | [14] | Lustig W P,Mukherjee S,Rudd N D,et al. Metal-Organic Frameworks: Functional Luminescent and Photonic Materials for Sensing Applications[J]. Chem Soc Rev,2017,46(11):3242-3285. | [15] | Lan A,Li K,Wu H,et al. A Luminescent Microporous Metal-Organic Framework for the Fast and Reversible Detection of High Explosives[J]. Angew Chem Int Ed,2009,48(13):2334-2338. | [16] | An J,Shade C,Chengelis-Czegan D,et al. Zinc-Adeninate Metal-Organic Framework for Aqueous Encapsulation and Sensitization of Near-infrared and Visible Emitting Lanthanide Cations[J]. J Am Chem Soc,2011,133(5):1220-1223. | [17] | Wang C,Tian L,Zhu W,et al. Dye@bio-MOF-1 Composite as a Dual-Emitting Platform for Enhanced Detection of a Wide Range of Explosive Molecules[J]. ACS Appl Mater Interfaces,2017,9(23):20076-20085. | [18] | Buso D,Jasieniak J,Lay M,et al. Highly Luminescent Metal-Organic Frameworks Through Quantum Dot Doping[J]. Small,2012,8(1):80-88. | [19] | Xie D,Ma Y,Gu Y,et al. Bifunctional NH2-MIL-88(Fe) Metal-Organic Framework Nanooctahedra for Highly Sensitive Detection and Efficient Removal of Arsenate in Aqueous Media[J]. J Mater Chem A,2017,5(45):23794-23804. | [20] | Douvali A,Tsipis A,Eliseeva S,et al. Turn-On Luminescence Sensing and Real-Time Detection of Traces of Water in Organic Solvents by a Flexible Metal-Organic Framework[J]. Angew Chem Int Ed,2015,54(5):1651-1656. | [21] | Lim K,Jeong S,Kang D,et al. Luminescent Metal-Organic Framework Sensor:Exceptional Cd2+ Turn-On Detection and First in Situ Visualization of Cd2+ Ion Diffusion into a Crystal[J]. Chem Eur J,2017,23(20):4803-4809. | [22] | Chen W,Meng X,Zhuang G,et al. A Superior Fluorescent Sensor for Al3+ and $UO^{2+}_{2}$ Based on a Co(II) Metal-Organic Framework with Exposed Pyrimidyl Lewis Base Sites[J]. J Mater Chem A,2017,5(25):13079-13085. | [23] | Wang M,Guo L,Cao D.Amino-Functionalized Luminescent Metal-Organic Framework Test Paper for Rapid and Selective Sensing of SO2 Gas and Its Derivatives by Luminescence Turn-On Effect[J]. Anal Chem,2018,90(5):3608-3614. | [24] | Zhu S,Yan B.A Novel Covalent Post-Synthetically Modified MOF Hybrid as a Sensitive and Selective Fluorescent Probe for Al3+ Detection in Aqueous Media[J]. Dalton Trans,2018,47(5):1674-1681. | [25] | Zhang X,Liu X,Zhang N.A Highly Selective and Sensitive Zn(II) Coordination Polymer Luminescent Sensor for Al3+ and NACs in the Aqueous Phase[J]. Inorg Chem Front,2017,4(11):1888-1894. | [26] | Wang B,Yang Q,Guo C,et al. Stable Zr(IV)-Based Metal-Organic Frameworks with Predesigned Functionalized Ligands for Highly Selective Detection of Fe(Ⅲ) Ions in Water[J]. ACS Appl Mater Interfaces,2017,9(11):10286-10295. | [27] | Dang S,Ma E,Sun Z,et al. A Layer-Structured Eu-MOF as a Highly Selective Fluorescent Probe for Fe3+ Detection Through a Cation-Exchange Approach[J]. Mater Chem,2012,22(33):16920-16926. | [28] | Zhao D,Liu X,Zhao Y,et al. Luminescent Cd(II)-Organic Frameworks with Chelating NH2 Sites for Selective Detection of Fe(Ⅲ) and Antibiotics[J]. J Mater Chem A,2017,5(30):15797-15807. | [29] | Tan H,Liu B,Chen Y.Lanthanide Coordination Polymer Nanoparticles for Sensing of Mercury(Ⅱ) by Photoinduced Electron Transfer[J]. ACS Nano,2012,6(12):10505-10511. | [30] | Ji G,Liu J,Gao X,et al. A Luminescent Lanthanide MOF for Selectively and Ultra-high Sensitively Detecting Pb2+ Ions in Aqueous Solution[J]. J Mater Chem A,2017,5(21):10200-10205. | [31] | Zhang X,Xia T,Jiang K,et al. Highly Sensitive and Selective Detection of Mercury(Ⅱ) Based on a Zirconium Metal-Organic Framework in Aqueous Media[J]. J Solid State Chem,2017,253:277-281. | [32] | Krämer R.Fluorescent Chemosensors for Cu2+ Ions:Fast, Selective, and Highly Snesitive[J]. Angew Chem Int Ed,1998,37(6):772-773. | [33] | Que E,Domaille D,Chang C.Metals in Neurobiology:Probing Their Chemistry and Biology with Molecular Imaging[J]. Chem Rev,2008,108(5):1517-1549. | [34] | Li L,Shen S,Lin R,et al. Rapid and Specific Luminescence Sensing of Cu(Ⅱ) Ions with a Porphyrinic Metal-Organic Framework[J]. Chem Commun,2017,53(72):9986-9989. | [35] | Chen Y,Jiang H.Porphyrinic Metal-Organic Framework Catalyzed Heck-Reaction:Fluorescence “Turn-On” Sensing of Cu(Ⅱ) Ion[J]. Chem Mater,2016,28(18):6698-6704. | [36] | Wu Q,Anslyn E.Catalytic Signal Amplification Using a Heck Reaction. An Example in the Fluorescence Sensing of Cu(Ⅱ)[J]. J Am Chem Soc,2004,126(45):14682-14683. | [37] | Wang J,Chen H,Ru F,et al. Encapsulation of Dual-Emitting Fluorescent Magnetic Nanoprobe in Metal-Organic Frameworks for Ultrasensitive Ratiometric Detection of Cu2+[J]. Chem Eur J,2018,24(18):3499-3505. | [38] | Hong Y,Lam J,Tang B.Aggregation-Induced Emission[J]. Chem Soc Rev,2011,40(11):5361-5388. | [39] | Li Q,Wu X,Huang X,et al. Tailoring the Fluorescence of AIE-Active Metal-Organic Frameworks for Aqueous Sensing of Metal Ions[J]. ACS Appl Mater Interfaces,2018,10(4):3801-3809. | [40] | Lu T,Zhang L,Sun M,et al. Amino-Functionalized Metal-Organic Frameworks Nanoplates-Based Energy Transfer Probe for Highly Selective Fluorescence Detection of Free Chlorine[J]. Anal Chem,2016,88(6):3413-3420. | [41] | Yang Z,Wang M,Wang X,et al. Boric-Acid-Functional Lanthanide Metal-Organic Frameworks for Selective Ratiometric Fluorescence Detection of Fluoride Ions[J]. Anal Chem,2017,89(3):1930-1936. | [42] | Karmakar A,Joarder B,Mallick A,et al. Aqueous Phase Sensing of Cyanide Ions Using a Hydrolytically Stable Metal-Organic Framework[J]. Chem Commun,2017,53(7):1253-1256. | [43] | Yu J,Cui Y,Xu H,et al. Confinement of Pyridinium Hemicyanine Dye Within an Anionic Metal-Organic Framework for Two-Photon-Pumped Lasing[J]. Nat Commun,2013,4:2719-1725. | [44] | Yang J,Dai Y,Zhu X,et al. Metal-Organic Frameworks with Inherent Recognition Sites for Selective Phosphate Sensing Through Their Coordination-Induced Fluorescence Enhancement Effect[J]. J Mater Chem A,2015,3(14):7445-7452. | [45] | Zhang Y,Wang Q,Lu J,et al. Synergistic Photoelectrochemical Reduction of Cr(Ⅵ) and Oxidation of Organic Pollutants by g-C3N4/TiO2-NTs Electrodes[J]. Chemosphere,2016,162:55-63. | [46] | Yao Z,Li G,Xu J,et al. A Water-Stable Luminescent ZnⅡ Metal-Organic Framework as Chemosensor for High-Efficiency Detection of CrⅥ-Anions($Cr_{2}O^{2-}_{7}$ and $CrO^{2-}_{4}$) in Aqueous Solution[J]. Chem Eur J,2018,24(13):3192-3198. | [47] | Chen L,Ye J,Wang H,et al. Ultrafast Water Sensing and Thermal Imaging by a Metal-Organic Framework with Switchable Luminescence[J]. Nat Commun,2017,8:15985-15994. | [48] | Hu Z,Lustig W,Zhang J,et al. Effective Detection of Mycotoxins by a Highly Luminescent Metal-Organic Framework[J]. J Am Chem Soc,2015,137(51):16209-15215. | [49] | Guo L,Wang M,Cao D.A Novel Zr-MOF as Fluorescence Turn-On Probe for Real-Time Detecting H2S Gas and Fingerprint Identification[J]. Small,2018,14(17):1703822-1703827. | [50] | Nandi S,Banesh S,Trivedi V,et al. A Dinitro-Functionalized Metal-Organic Framework Featuring Visual and Fluorogenic Sensing of H2S in Living Cells, Human Blood Plasma and Environmental Samples[J]. Analyst,2018,143(6):1482-1491. | [51] | Zhang X,Jiang K,He H,et al. A Stable Lanthanide-Functionalized Nanoscale Metal-Organic Framework as a Fluorescent Probe for pH[J]. Sens Actuators B,2018,254:1069-1077. | [52] | Wu S,Lin Y,Liu J,et al. Rapid Detection of the Biomarkers for Carcinoid Tumors by a Water Stable Luminescent Lanthanide Metal-Organic Framework Sensor[J]. Adv Funct Mater,2018,28(17):1707169-1707178. | [53] | Deng J,Wang K,Wang M,et al. Mitochondria Targeted Nanoscale Zeolitic Imidazole Framework-90 for ATP Imaging in Live Cells[J]. J Am Chem Soc,2017,139(16):5877-5882. | [54] | Mei J,Leung N,Kwok R,et al. Aggregation-Induced Emission:Together We Shine, United We Soar?[J]. Chem Rev,2015,115(21):11718-11940. | [55] | Ojida A,Park S,Mito-oka Y,et al. Efficient Fluorescent ATP-Sensing Based on Coordination Chemistry Under Aqueous Neutral Conditions[J]. Tetrahedron Lett,2002,43(35):6193-6195. | [56] | Yue D,Zhao D,Zhang J,et al. A Luminescent Cerium Metal-Organic Framework for the Turn-On Sensing of Ascorbic Acid[J]. Chem Commun,2017,53(81):11221-11224. | [57] | Kneipp J,Kneipp H,Kneipp K.SERS-A Single-Molecule and Nanoscale Tool for Bioanalytics[J]. Chem Soc Rev,2008,37(5):1052-1060. | [58] | Qiao X,Su B,Liu C,et al. Selective Surface Enhanced Raman Scattering for Quantitative Detection of Lung Cancer Biomarkers in Superparticle@MOF Structure[J]. Adv Mater,2018,30(50):1702275-1702282. | [59] | Handa S,Gnanadesikan V,Matsunaga S,et al. Heterobimetallic Transition Metal/Rare Earth Metal Bifunctional Catalysis:A Cu/Sm/Schiff Base Complex for syn-Selective Catalytic Asymmetric Nitro-Mannich Reaction[J]. J Am Chem Soc,2010,132(13):4925-4934. |
|