Porous organic materials for iodine adsorption.
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[1] Jianding Qiu,et al. An ionic vinylene-linked three-dimensional covalent organic framework for selective and efficient trapping of ReO4− or 99TcO4− , 2022, Nature communications.
[2] Hyojin Kim,et al. Covalent organic framework-based catalysts for efficient CO2 utilization reactions , 2022, Coordination Chemistry Reviews.
[3] Victoria Richards. Porous organic cages stabilize methylammonium lead iodide films , 2022, Communications Chemistry.
[4] Ali Coskun,et al. Porous organic polymers for CO2 capture, separation and conversion , 2022, Chemical Society reviews.
[5] S. Brasselet,et al. Energy‐Efficient Iodine Uptake by a Molecular Host⋅Guest Crystal , 2022, Angewandte Chemie.
[6] Hong‐Cai Zhou,et al. Three-Dimensional Covalent Organic Frameworks with she Topology. , 2022, Journal of the American Chemical Society.
[7] R. Palkovits,et al. Single‐Atom Catalysts on Covalent Triazine Frameworks: at the Crossroad between Homogeneous and Heterogeneous Catalysis , 2022, Angewandte Chemie.
[8] Lingling Wang,et al. Solution Processing of Cross-Linked Porous Organic Polymers , 2022, Accounts of Materials Research.
[9] G. Zhu,et al. Tailoring the pore chemistry in porous aromatic frameworks for selective separation of acetylene from ethylene , 2022, Chemical science.
[10] O. Yaghi,et al. Covalent Organic Frameworks for Carbon Dioxide Capture from Air. , 2022, Journal of the American Chemical Society.
[11] M. Iglesias,et al. Porous Aromatic Frameworks Containing Binaphthyl-Dihydroazepine Units (Cbapafs) as Catalytic Supports for Asymmetric Reactions , 2022, SSRN Electronic Journal.
[12] Jianzhuang Jiang,et al. Transformation of Porous Organic Cages and Covalent Organic Frameworks with Efficient Iodine Vapor Capture Performance. , 2022, Journal of the American Chemical Society.
[13] I. Pinnau,et al. Efficient and simultaneous capture of iodine and methyl iodide achieved by a covalent organic framework , 2022, Nature Communications.
[14] Jian‐Ke Sun,et al. Hierarchically Porous Poly(ionic liquid)-Organic Cage Composite Membrane for Efficient Iodine Capture. , 2022, Chemistry.
[15] Hongbo Zhang,et al. Chemically Stable Guanidinium Covalent Organic Framework for the Efficient Capture of Low-Concentration Iodine at High Temperatures. , 2022, Journal of the American Chemical Society.
[16] Gilles H. Peslherbe,et al. Highly Efficient and Reversible Iodine Capture Utilizing Amorphous Conjugated Covalent Triazine-Based Porous Polymers: Experimental and Computational Studies , 2022, Journal of Environmental Chemical Engineering.
[17] T. Nenoff,et al. Adsorption of iodine in metal–organic framework materials , 2022, Chemical Society reviews.
[18] P. Miró-Martínez,et al. Radioactive iodine and female fertility , 2022, Scientific Reports.
[19] Guipeng Yu,et al. Fluorinated Covalent Triazine Frameworks for Effective CH4 Separation and Iodine Vapor Uptake , 2022, Separation and Purification Technology.
[20] Xueqin Zhou,et al. Nanoarchitectonics of bipyrazole-based porous organic polymer for iodine absorption and fluorescence sensing picric acid and formation of liquid complex of its (poly)iodide ions , 2022, Journal of Solid State Chemistry.
[21] Oussama M. El-Kadri,et al. Triazine-based porous organic polymers for reversible capture of iodine and utilization in antibacterial application , 2022, Scientific Reports.
[22] Zongquan Wu,et al. Precise fabrication of porous polymer frameworks using rigid polyisocyanides as building blocks: from structural regulation to efficient iodine capture , 2022, Chemical science.
[23] A. Cooper,et al. A smart and responsive crystalline porous organic cage membrane with switchable pore apertures for graded molecular sieving , 2022, Nature Materials.
[24] J. Sessler,et al. Reversible Iodine Capture by Nonporous Adaptive Crystals of a Bipyridine Cage. , 2021, Journal of the American Chemical Society.
[25] J. Sessler,et al. Calix[4]pyrrole-based Crosslinked Polymer Networks for Highly Effective Iodine Adsorption from Water. , 2021, Angewandte Chemie.
[26] G. Zhu,et al. Continuous Porous Aromatic Framework Membranes with Modifiable Sites for Optimized Gas Separation. , 2021, Angewandte Chemie.
[27] Jianqiang Luo,et al. Adsorption of Iodine on Adamantane‐Based Covalent Organic Frameworks , 2021, ChemistrySelect.
[28] Hanzhong Ke,et al. Phosphine-based covalent organic framework for highly efficient iodine capture , 2021 .
[29] Shuran Zhang,et al. Preparation of covalent triazine frameworks with multiactive sites for efficient and reversible iodine capture , 2021, European Polymer Journal.
[30] Yifu Luo,et al. A Carbazole-Functionalized Porous Aromatic Framework for Enhancing Volatile Iodine Capture via Lewis Electron Pairing , 2021, Molecules.
[31] I. Pinnau,et al. Ionic Functionalization of Multivariate Covalent Organic Frameworks to Achieve Exceptionally High Iodine Capture Capacity. , 2021, Angewandte Chemie.
[32] Jian Zhang,et al. Designable Assembly of Aluminum Molecular Rings for Sequential Confinement of Iodine Molecules. , 2021, Angewandte Chemie.
[33] S. Ghosh,et al. Functionalized Ionic Porous Organic Polymers Exhibiting High Iodine Uptake from Both the Vapor and Aqueous Medium. , 2021, ACS applied materials & interfaces.
[34] C. Kappas,et al. Occupational exposure and radiobiological risk from thyroid radioiodine therapy in Saudi Arabia , 2021, Scientific Reports.
[35] Juewen Liu,et al. Covalent Organic Framework Sponges for Efficient Solar Desalination and Selective Uranium Recovery. , 2021, ACS applied materials & interfaces.
[36] Liwei Mi,et al. Constructing cationic covalent organic frameworks by a post-function process for an exceptional iodine capture via electrostatic interactions , 2021 .
[37] Yanli Zhao,et al. High iodine uptake in two-dimensional covalent organic frameworks. , 2021, Chemical communications.
[38] V. Valtchev,et al. 3D Thioether-Based Covalent Organic Frameworks for Selective and Efficient Mercury Removal. , 2021, Small.
[39] Yue Shi,et al. Theoretical Screening and Experimental Synthesis of Ultrahigh-Iodine Capture Covalent Organic Frameworks. , 2021, ACS applied materials & interfaces.
[40] Lehui Lu,et al. Host-guest interaction-mediated nanointerface engineering for radioiodine capture , 2021, Nano Today.
[41] B. Lotsch,et al. Solving the COF trilemma: towards crystalline, stable and functional covalent organic frameworks. , 2020, Chemical Society reviews.
[42] Yuancheng Qin,et al. Efficient Capture of Volatile Iodine by Thiophene-Containing Porous Organic Polymers , 2020 .
[43] Tianyu Liu,et al. Porous organic materials offer vast future opportunities , 2020, Nature Communications.
[44] Linfeng Gan,et al. Easily Constructed Imine-Bonded COFs for Iodine Capture at Ambient Temperature , 2020, ACS omega.
[45] Zhongping Li,et al. A simple and cost-effective synthesis of ionic porous organic polymers with excellent porosity for high iodine capture , 2020 .
[46] Yin Tian,et al. Colyliform Crystalline 2D Covalent Organic Frameworks with Quasi-3D Topologies for Rapid I2 Adsorption. , 2020, Angewandte Chemie.
[47] Yinghua Jin,et al. Desymmetrized Vertex Design toward a Molecular Cage with Unusual Topology. , 2020, Angewandte Chemie.
[48] Hanzhong Ke,et al. Functional porous organic polymer with high S and N for reversible iodine capture , 2020 .
[49] Z. Wang,et al. Two-dimensional covalent–organic frameworks for ultrahigh iodine capture , 2020, Journal of Materials Chemistry A.
[50] Song Zhao,et al. Iodine Capture Using Zr-based Metal-Organic Frameworks (Zr-MOFs): Adsorption Performance and Mechanism. , 2020, ACS applied materials & interfaces.
[51] Min Liu,et al. Preparation of biimidazole-based porous organic polymers for ultrahigh iodine capture and formation of liquid complexes with iodide/polyiodide ions , 2020 .
[52] Jian-Bo He,et al. Ferrocene-based porous organic polymers for high-affinity iodine capture , 2020 .
[53] Guanjun Chang,et al. An indole-derived porous organic polymer for the efficient visual colorimetric capture of iodine in aqueous media via the synergistic effects of cation-π and electrostatic forces. , 2020, Chemical communications.
[54] Yan Liu,et al. Rational synthesis of interpenetrated 3D covalent organic frameworks for asymmetric photocatalysis , 2019, Chemical science.
[55] A. Sheveleva,et al. Iodine Adsorption in a Redox-Active Metal–Organic Framework: Electrical Conductivity Induced by Host−Guest Charge-Transfer , 2019, Inorganic chemistry.
[56] Shuran Zhang,et al. Iodine capture in porous organic polymers and metal–organic frameworks materials , 2019, Materials Horizons.
[57] Guipeng Yu,et al. Exploration of 1D channels in stable and high-surface-area covalent triazine polymers for effective iodine removal , 2019, Chemical Engineering Journal.
[58] Guipeng Yu,et al. Carbazole-Bearing Porous Organic Polymers with a Mulberry-Like Morphology for Efficient Iodine Capture. , 2019, ACS applied materials & interfaces.
[59] P. Mukherjee,et al. Organic Imine Cages: Molecular Marriage and Applications. , 2019, Angewandte Chemie.
[60] Yong Cui,et al. Microporous 3D Covalent Organic Frameworks for Liquid Chromatographic Separation of Xylene Isomers and Ethylbenzene. , 2019, Journal of the American Chemical Society.
[61] T. Pal,et al. Porosity Switching in Polymorphic Porous Organic Cages with Exceptional Chemical Stability. , 2019, Angewandte Chemie.
[62] Chongli Zhong,et al. Highly Porous Covalent Triazine Frameworks for Reversible Iodine Capture and Efficient Removal of Dye , 2018, Industrial & Engineering Chemistry Research.
[63] Cory M. Simon,et al. Eigencages: Learning a Latent Space of Porous Cage Molecules , 2018, ACS central science.
[64] T. Bein,et al. Covalent Organic Frameworks: Structures, Synthesis, and Applications , 2018, Advanced Functional Materials.
[65] Lin Li,et al. Quantification of radioactivity by planar gamma-camera images, a promoted method of absorbed dose in the thyroid after iodine-131 treatment , 2018, Scientific Reports.
[66] Zhongping Li,et al. Exceptional Iodine Capture in 2D Covalent Organic Frameworks , 2018, Advanced materials.
[67] Yin Tian,et al. Mechanistic Insight into Hydrogen-Bond-Controlled Crystallinity and Adsorption Property of Covalent Organic Frameworks from Flexible Building Blocks , 2018 .
[68] Xinwen Guo,et al. A 3D Covalent Organic Framework with Exceptionally High Iodine Capture Capability. , 2018, Chemistry.
[69] Arne Thomas,et al. Trends and challenges for microporous polymers. , 2017, Chemical Society reviews.
[70] Tongmou Geng,et al. A nitrogen-rich fluorescent conjugated microporous polymer with triazine and triphenylamine units for high iodine capture and nitro aromatic compound detection , 2017 .
[71] Shilun Qiu,et al. Porous Organic Materials: Strategic Design and Structure-Function Correlation. , 2017, Chemical reviews.
[72] A. Abdel-Wahab,et al. Multifunctional redox-tuned viologen-based covalent organic polymers , 2016 .
[73] Wei Zheng,et al. Multiple-factor analysis of the first radioactive iodine therapy in post-operative patients with differentiated thyroid cancer for achieving a disease-free status , 2016, Scientific Reports.
[74] Chang Yeon Lee,et al. Porphyrin and pyrene-based conjugated microporous polymer for efficient sequestration of CO2 and iodine and photosensitization for singlet oxygen generation , 2016 .
[75] B. Alston,et al. Porosity-engineered carbons for supercapacitive energy storage using conjugated microporous polymer precursors , 2016 .
[76] James L. Jerden,et al. Materials and processes for the effective capture and immobilization of radioiodine: A review , 2016 .
[77] D. Jiang,et al. Stable, crystalline, porous, covalent organic frameworks as a platform for chiral organocatalysts. , 2015, Nature chemistry.
[78] G. Armatas,et al. Ion-Exchangeable Molybdenum Sulfide Porous Chalcogel: Gas Adsorption and Capture of Iodine and Mercury. , 2015, Journal of the American Chemical Society.
[79] Ye Yuan,et al. Highly Efficient Enrichment of Volatile Iodine by Charged Porous Aromatic Frameworks with Three Sorption Sites. , 2015, Angewandte Chemie.
[80] Arne Thomas,et al. A tetrathiafulvalene (TTF)-conjugated microporous polymer network. , 2014, Chemistry.
[81] Hong Xia,et al. Highly efficient and reversible iodine capture using a metalloporphyrin-based conjugated microporous polymer. , 2014, Chemical communications.
[82] Jun Liu,et al. Introduction of π-complexation into porous aromatic framework for highly selective adsorption of ethylene over ethane. , 2014, Journal of the American Chemical Society.
[83] S. Qiu,et al. Ultrahigh iodine adsorption in porous organic frameworks , 2014 .
[84] Dingcai Wu,et al. Redox-active conjugated microporous polymers: a new organic platform for highly efficient energy storage. , 2014, Chemical communications.
[85] Yushan Yan,et al. 3D microporous base-functionalized covalent organic frameworks for size-selective catalysis. , 2014, Angewandte Chemie.
[86] Tamoghna Mitra,et al. Molecular shape sorting using molecular organic cages. , 2013, Nature chemistry.
[87] J. Gawroński,et al. Self-assembly of a covalent organic cage with exceptionally large and symmetrical interior cavity: the role of entropy of symmetry. , 2013, Chemical communications.
[88] Mark Z. Jacobson,et al. Worldwide health effects of the Fukushima Daiichi nuclear accident , 2012 .
[89] Tatsuya Higashi,et al. Radioactive iodine (131I) therapy for differentiated thyroid cancer in Japan: current issues with historical review and future perspective , 2012, Annals of Nuclear Medicine.
[90] Feng Deng,et al. Gas storage in porous aromatic frameworks (PAFs) , 2011 .
[91] A. Cooper,et al. Molecular doping of porous organic cages. , 2011, Journal of the American Chemical Society.
[92] Mark A. Rodriguez,et al. Capture of volatile iodine, a gaseous fission product, by zeolitic imidazolate framework-8. , 2011, Journal of the American Chemical Society.
[93] Heping Ma,et al. Synthesis of a porous aromatic framework for adsorbing organic pollutants application , 2011 .
[94] Zhigang Xie,et al. Highly stable and porous cross-linked polymers for efficient photocatalysis. , 2011, Journal of the American Chemical Society.
[95] John D. Vienna,et al. Nuclear Waste Vitrification in the United States: Recent Developments and Future Options , 2010 .
[96] T. Nenoff,et al. Radioactive iodine capture in silver-containing mordenites through nanoscale silver iodide formation. , 2010, Journal of the American Chemical Society.
[97] Wenchuan Wang,et al. Targeted synthesis of a porous aromatic framework with high stability and exceptionally high surface area. , 2009, Angewandte Chemie.
[98] A. Slawin,et al. Porous organic cages. , 2009, Nature materials.
[99] R. Ewing,et al. Nuclear Waste Management in the United States—Starting Over , 2009, Science.
[100] Markus Antonietti,et al. From microporous regular frameworks to mesoporous materials with ultrahigh surface area: dynamic reorganization of porous polymer networks. , 2008, Journal of the American Chemical Society.
[101] Markus Antonietti,et al. Porous, covalent triazine-based frameworks prepared by ionothermal synthesis. , 2008, Angewandte Chemie.
[102] M. Antonietti,et al. Exploring Polymers of Intrinsic Microporosity – Microporous, Soluble Polyamide and Polyimide , 2007 .
[103] Eli Kintisch,et al. Congress Tells DOE to Take Fresh Look at Recycling Spent Reactor Fuel , 2005, Science.
[104] Michael O'Keeffe,et al. Porous, Crystalline, Covalent Organic Frameworks , 2005, Science.
[105] B. de Benoist,et al. New reference values for thyroid volume by ultrasound in iodine-sufficient schoolchildren: a World Health Organization/Nutrition for Health and Development Iodine Deficiency Study Group Report. , 2004, The American journal of clinical nutrition.
[106] A. H. Wapstra,et al. The Nubase evaluation of nuclear and decay properties , 2003 .
[107] Xinglong Dong,et al. Adsorption-based Capture of Iodine and Organic Iodides: Status and Challenges , 2023, Journal of Materials Chemistry A.
[108] Y. Liu,et al. Molecular engineering of covalent triazine frameworks with tunable band structures for highly enhanced photocatalytic aerobic oxidation of sulfides , 2022, Journal of Materials Chemistry A.
[109] Jianding Qiu,et al. Covalent Organic Framework Hydrogel for Synergistic Seawater Desalination and Uranium Extraction , 2021, Journal of Materials Chemistry A.
[110] Peiping Zhang,et al. Synthesis of N-containing porous aromatic frameworks via Scholl reaction for reversible iodine capture , 2021 .
[111] Y. Liu,et al. Porous organic cages for efficient gas selective separation and iodine capture , 2022 .
[112] A Facile Efficient, and General Synthetic Method to Amide-Linked Covalent Organic Frameworks , 2022 .