Toward Controlling Disassembly Step within the ADOR Process for the Synthesis of Zeolites
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Jiří Čejka | Michal Mazur | Zdeněk Tošner | Jin Zhang | Ondřej Veselý | Maksym Opanasenko | Mariya Shamzhy | J. Čejka | Zdeněk Tošner | M. Mazur | M. Opanasenko | M. Shamzhy | Jin Zhang | Ondřej Veselý
[1] L. Burel,et al. Quasi all-silica zeolite obtained by isomorphous degermanation of an as-made germanium-containing precursor. , 2014, Angewandte Chemie.
[2] S. Che,et al. Topotactic Conversion of Alkali-Treated Intergrown Germanosilicate CIT-13 into Single-Crystalline ECNU-21 Zeolite as Shape-Selective Catalyst for Ethylene Oxide Hydration. , 2019, Chemistry.
[3] Jean-Louis Paillaud,et al. Extra-Large-Pore Zeolites with Two-Dimensional Channels Formed by 14 and 12 Rings , 2004, Science.
[4] J. Čejka,et al. Transformation of aromatic hydrocarbons over isomorphously substituted UTL: Comparison with large and medium pore zeolites , 2013 .
[5] J. Čejka,et al. The ADOR mechanism for the synthesis of new zeolites. , 2015, Chemical Society reviews.
[6] R. Morris,et al. Post-Synthesis Stabilization of Germanosilicate Zeolites ITH, IWW, and UTL by Substitution of Ge for Al. , 2016, Chemistry.
[7] J. Čejka,et al. Extra‐Large‐Pore Zeolites with UTL Topology: Control of the Catalytic Activity by Variation in the Nature of the Active Sites , 2013 .
[8] J. Čejka,et al. Synthesis and Post-Synthesis Transformation of Germanosilicate Zeolites. , 2020, Angewandte Chemie.
[9] Avelino Corma,et al. ITQ-15: the first ultralarge pore zeolite with a bi-directional pore system formed by intersecting 14- and 12-ring channels, and its catalytic implications. , 2004, Chemical communications.
[10] Jiří Čejka,et al. From double-four-ring germanosilicates to new zeolites: in silico investigation. , 2014, Chemphyschem : a European journal of chemical physics and physical chemistry.
[11] C. Baes,et al. The hydrolysis of cations , 1986 .
[12] J. Čejka,et al. Synthesis of 'unfeasible' zeolites. , 2016, Nature chemistry.
[13] Lesile Glasser. The chemistry of silica: By Ralph K. Iller. Pp. vii+ 866. Wiley, Chichester. 1979, £39.50 , 1980 .
[14] J. Čejka,et al. The effect of pore size dimensions in isoreticular zeolites on carbon dioxide adsorption heats , 2018 .
[15] Hao Xu,et al. Topotactic conversion of Ge-rich IWW zeolite into IPC-18 under mild condition , 2021 .
[16] J. Čejka,et al. Synthesis of isomorphously substituted extra-large pore UTL zeolites , 2012 .
[17] Lauren N. McHugh,et al. Monitoring the assembly–disassembly–organisation–reassembly process of germanosilicate UTL through in situ pair distribution function analysis , 2018 .
[18] J. Čejka,et al. Hierarchical hybrid organic-inorganic materials with tunable textural properties obtained using zeolitic-layered precursor. , 2014, Journal of the American Chemical Society.
[19] J. Čejka,et al. Vapour-phase-transport rearrangement technique for the synthesis of new zeolites , 2019, Nature Communications.
[20] P. Weiss,et al. Simple, robust molecular self-assembly on germanium , 2011 .
[21] Lu Han,et al. Isomorphous Incorporation of Tin Ions into Germanosilicate Framework Assisted by Local Structural Rearrangement , 2016 .
[22] P. Concepción,et al. New trends in tailoring active sites in zeolite-based catalysts. , 2019, Chemical Society reviews.
[23] J. Čejka,et al. Expansion of the ADOR Strategy for the Synthesis of Zeolites: The Synthesis of IPC‐12 from Zeolite UOV , 2017, Angewandte Chemie.
[24] J. Čejka,et al. Isomorphous Introduction of Boron in Germanosilicate Zeolites with UTL Topology , 2011 .
[25] Michel Waroquier,et al. Design of zeolite by inverse sigma transformation. , 2012, Nature materials.
[26] J. Čejka,et al. Zeolites with Continuously Tuneable Porosity , 2014, Angewandte Chemie.
[27] J. Čejka,et al. Insight into the ADOR zeolite-to-zeolite transformation: the UOV case. , 2018, Dalton transactions.
[28] M. Thommes,et al. Comparison of DFT characterization methods based on N2, Ar, CO2, and H2 adsorption applied to carbons with various pore size distributions , 2004 .
[29] J. Čejka,et al. Assembly–Disassembly–Organization–Reassembly Synthesis of Zeolites Based on cfi-Type Layers , 2017 .
[30] J. Čejka,et al. Germanosilicate Precursors of ADORable Zeolites Obtained by Disassembly of ITH, ITR, and IWR Zeolites , 2014 .
[31] J. Čejka,et al. Structural analysis of IPC zeolites and related materials using positron annihilation spectroscopy and high-resolution argon adsorption. , 2016, Physical chemistry chemical physics : PCCP.
[32] E. Teller,et al. ADSORPTION OF GASES IN MULTIMOLECULAR LAYERS , 1938 .
[33] Peng Wu,et al. Post-synthesis treatment gives highly stable siliceous zeolites through the isomorphous substitution of silicon for germanium in germanosilicates. , 2014, Angewandte Chemie.
[34] Mark E. Davis,et al. Transformation of Extra-Large Pore Germanosilicate CIT-13 Molecular Sieve into Extra-Large Pore CIT-5 Molecular Sieve , 2019, Chemistry of Materials.
[35] J. Čejka,et al. The Assembly-Disassembly-Organization-Reassembly Mechanism for 3D-2D-3D Transformation of Germanosilicate IWW Zeolite** , 2014, Angewandte Chemie.
[36] P. Nachtigall,et al. Theoretical investigation of layered zeolite frameworks: Surface properties of 2D zeolites , 2014 .
[37] J. Čejka,et al. From 3D to 2D zeolite catalytic materials. , 2018, Chemical Society reviews.
[38] J. Čejka,et al. A procedure for identifying possible products in the assembly–disassembly–organization–reassembly (ADOR) synthesis of zeolites , 2019, Nature Protocols.
[39] J. H. de Boer,et al. Studies on pore systems in catalysts: V. The t method , 1965 .
[40] Petr Nachtigall,et al. A family of zeolites with controlled pore size prepared using a top-down method. , 2013, Nature chemistry.
[41] P. Wheatley,et al. Synthesis, Isotopic Enrichment, and Solid-State NMR Characterization of Zeolites Derived from the Assembly, Disassembly, Organization, Reassembly Process , 2017, Journal of the American Chemical Society.
[42] C. A. Emeis. Determination of integrated molar extinction coefficients for infrared absorption bands of pyridine adsorbed on solid acid catalysts , 1993 .
[43] J. Čejka,et al. Zeolite (In)Stability under Aqueous or Steaming Conditions , 2020, Advanced materials.
[44] J. Čejka,et al. In situ solid-state NMR and XRD studies of the ADOR process and the unusual structure of zeolite IPC-6 , 2017, Nature Chemistry.
[45] Stewart J. Warrender,et al. Mechanochemically assisted hydrolysis in the ADOR process† †Electronic supplementary information (ESI) available. See DOI: 10.1039/d0sc02547j , 2020, Chemical science.
[46] M. Mazur,et al. Kinetics and Mechanism of the Hydrolysis and Rearrangement Processes within the Assembly–Disassembly–Organization–Reassembly Synthesis of Zeolites , 2019, Journal of the American Chemical Society.
[47] J. Čejka,et al. Isoreticular UTL-Derived Zeolites as Model Materials for Probing Pore Size–Activity Relationship , 2019, ACS Catalysis.
[48] M. Deem,et al. Why Zeolites Have So Few Seven-Membered Rings , 2014 .