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Bimetallic Pd/Sn‐based Nanoparticles and their Catalytic Properties in the Semihydrogenation of Diphenylacetylene.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 296, doi. 10.1002/open.202000298
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Materials Synthesis in Ionic Liquids.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 60, doi. 10.1002/open.202100014
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Cover Feature: Reactivity of Ionic Liquids: Reductive Effect of [C<sub>4</sub>C<sub>1</sub>im]BF<sub>4</sub> to Form Particles of Red Amorphous Selenium and Bi<sub>2</sub>Se<sub>3</sub> from Oxide Precursors (ChemistryOpen 2/2021).
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- ChemistryOpen, 2021, v. 10, n. 2, p. 57, doi. 10.1002/open.202100012
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Front Cover: Metal Assisted Synthesis of Cationic Sulfidobismuth Cubanes in Ionic Liquids (ChemistryOpen 2/2021).
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- ChemistryOpen, 2021, v. 10, n. 2, p. 56, doi. 10.1002/open.202100011
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Metal Assisted Synthesis of Cationic Sulfidobismuth Cubanes in Ionic Liquids.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 59, doi. 10.1002/open.202100010
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Metal Sulfide Nanoparticle Synthesis with Ionic Liquids – State of the Art and Future Perspectives.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 272, doi. 10.1002/open.202000357
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Planar Iron Hydride Nanoclusters: Combined Spectroscopic and Theoretical Insights into Structures and Building Principles.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 265, doi. 10.1002/open.202000307
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Chalcogenido‐Dimethylgallates and ‐Indates DMPyr<sub>2</sub>[Me<sub>2</sub>M(μ<sub>2</sub>−E)]<sub>2</sub> (M=Ga, In; E=S, Se): Building Blocks for Higher and Lower Order Chalcogenidoindates.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 83, doi. 10.1002/open.202000347
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Heavy Chalcogenide‐Based Ionic Liquids in Syntheses of Metal Chalcogenide Materials near Room Temperature.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 92, doi. 10.1002/open.202000346
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UiO‐66 and hcp UiO‐66 Catalysts Synthesized from Ionic Liquids as Linker Precursors.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 233, doi. 10.1002/open.202000291
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Ionic Liquid‐Driven Formation of and Cation Exchange in Layered Sulfido Stannates – a CH<sub>2</sub> Group Makes the Difference.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 227, doi. 10.1002/open.202000287
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Reactivity and Controlled Redox Reactions of Salt‐like Intermetallic Compounds in Imidazolium‐Based Ionic Liquids.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 205, doi. 10.1002/open.202000262
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Understanding the Photoexcitation of Room Temperature Ionic Liquids.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 72, doi. 10.1002/open.202000278
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Reactivity of Ionic Liquids: Reductive Effect of [C<sub>4</sub>C<sub>1</sub>im]BF<sub>4</sub> to Form Particles of Red Amorphous Selenium and Bi<sub>2</sub>Se<sub>3</sub> from Oxide Precursors.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 125, doi. 10.1002/open.202000264
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Conductivity and Redox Potentials of Ionic Liquid Trihalogen Monoanions [X<sub>3</sub>]<sup>−</sup>, [XY<sub>2</sub>]<sup>−</sup>, and [BrF<sub>4</sub>]<sup>−</sup> (X=Cl, Br, I and Y=Cl, Br).
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- ChemistryOpen, 2021, v. 10, n. 2, p. 255, doi. 10.1002/open.202000263
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Cluster Salts [Nb<sub>6</sub>Cl<sub>12</sub>(HIm)<sub>6</sub>]A<sub>n</sub> (with HIm=1H‐imidazole and A=Mineral Acid Anion, n=1 or 2) Made in and with Brønsted‐basic Ionic Liquids and Liquid Mixtures.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 248, doi. 10.1002/open.202000266
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Extremely Low Vapor‐Pressure Data as Access to PC‐SAFT Parameter Estimation for Ionic Liquids and Modeling of Precursor Solubility in Ionic Liquids.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 216, doi. 10.1002/open.202000258
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Volatility of molten salts [Ph<sub>4</sub>P][NTf<sub>2</sub>] and Cs[NTf<sub>2</sub>].
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- ChemistryOpen, 2021, v. 10, n. 2, p. 199, doi. 10.1002/open.202000260
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In the footsteps of August Michaelis: Syntheses and Thermodynamics of Extremely Low‐Volatile Ionic Liquids.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 243, doi. 10.1002/open.202000259
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Influence of Nanoparticle Processing on the Thermoelectric Properties of (Bi<sub>x</sub>Sb<sub>1−X</sub>)<sub>2</sub>Te<sub>3</sub> Ternary Alloys.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 189, doi. 10.1002/open.202000257
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Ge−Fe Carbonyl Cluster Compounds: Ionic Liquids‐Based Synthesis, Structures, and Properties.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 171, doi. 10.1002/open.202000254
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Synthesis of Ti(OH)OF ⋅ 0.66 H<sub>2</sub>O in Imidazolium‐based Ionic Liquids.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 181, doi. 10.1002/open.202000256
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Pseudohalogen Chemistry in Ionic Liquids with Non‐innocent Cations and Anions.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 62, doi. 10.1002/open.202000252
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Statistic Replacement of Lanthanide Ions in Bis‐salicylatoborate Coordination Polymers for the Deliberate Control of the Luminescence Chromaticity.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 164, doi. 10.1002/open.202000251
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Low Temperature Activation of Tellurium and Resource‐Efficient Synthesis of AuTe<sub>2</sub> and Ag<sub>2</sub>Te in Ionic Liquids.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 117, doi. 10.1002/open.202000249
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Metal Assisted Synthesis of Cationic Sulfidobismuth Cubanes in Ionic Liquids.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 110, doi. 10.1002/open.202000246
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Speciation of Copper(II)‐Betaine Complexes as Starting Point for Electrochemical Copper Deposition from Ionic Liquids.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 97, doi. 10.1002/open.202000231
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Tetrahydrothiophene‐Based Ionic Liquids: Synthesis and Thermodynamic Characterizations.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 153, doi. 10.1002/open.202000228
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Model Studies on the Ozone‐Mediated Synthesis of Cobalt Oxide Nanoparticles from Dicobalt Octacarbonyl in Ionic Liquids.
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- ChemistryOpen, 2021, v. 10, n. 2, p. 141, doi. 10.1002/open.202000187
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