Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Zbyněk Janoušek is active.

Publication


Featured researches published by Zbyněk Janoušek.


RSC Advances | 2014

Water-soluble highly fluorinated graphite oxide

Ondřej Jankovský; Petr Šimek; David Sedmidubský; Stanislava Matějková; Zbyněk Janoušek; Filip Šembera; Martin Pumera; Zdeněk Sofer

Water-soluble highly fluorinated graphite oxide is a promising candidate for applications in biosensing and for fluorescent probes due to its variable fluorescence properties. We report on a simple process for the preparation of a fluorinated graphite oxide (FGO). This process is based on fluorination of graphite oxide (GO) in a fluorine atmosphere at an elevated temperature and pressure. We used two different GO precursors, which were prepared by Staudenmaier and Hummers methods. The method of GO synthesis has a strong influence on the concentration of fluorine in the obtained product. The mechanism of GO fluorination is associated with the presence of reactive groups, mostly epoxides, and is accompanied by etching of graphite oxide. Our analyses highlighted that the FGO prepared by Hummers method contains a significantly higher amount of bounded fluorine and can be used as a starting material for the synthesis of chemically reduced fluorine doped graphene. Water soluble fluorinated graphene can be easily processed in aqueous solutions to create hydrophilic particles and films with tunable fluorescence properties.


Chemistry: A European Journal | 2017

Fluorographene Modified by Grignard Reagents: A Broad Range of Functional Nanomaterials

Vlastimil Mazánek; Alena Libánská; Jiří Šturala; Daniel Bouša; David Sedmidubský; Martin Pumera; Zbyněk Janoušek; Jan Plutnar; Zdeněk Sofer

Fluorographene is the youngest stoichiometric derivative of graphene; hence, its reactivity is only poorly explored. Compared to graphene, the significantly higher reactivity of C-F bonds makes this material a suitable platform for a large number of chemical modifications. Fluorographene is also the only member of the halographene family that can be prepared in the stoichiometric composition (C1 F1 ). Herein, the chemical modification of fluorographene with Grignard reagents, which are well known in organic synthesis for the formation of new C-C bonds, is presented. The reaction with alkyl magnesium bromides led to successful modification of fluorographene with ethyl, vinyl, ethynyl and propargyl groups. Chemical characterisation showed the presence of covalently bonded functional groups in a high concentration exceeding one functional group per C6 motif. The reactivity of Grignard reagents with fluorographene decreased from ethyl to ethynyl. The terminal carbon-carbon triple bonds were used for click reactions with organic azides leading to the formation of triazole rings. These findings open up a broad spectrum of opportunities for simple and robust modification of graphene by chemical reactions proceeding at room temperature under mild conditions. These results have major application potential in sensing, biomedical and energy-related applications.


Dalton Transactions | 2007

The [2,5,12-C3B8H15]− anion, the first representative of the eleven-vertex hypho family of tricarbaboranes

Michael G. S. Londesborough; Zbyněk Janoušek; Bohumil Štíbr; Drahomír Hnyk; Jaromír Plešek; Ivana Císařová

In one synthetic step from the readily available 9-Me(2)SCH(2)-nido-7,8-C(2)B(9)H(11) (compound 1), the first representative of the eleven-vertex hypho family of tricarbaboranes, [2,5,12-C(3)B(8)H(15)][X] (X=[NMe4]+ or [PPh4]+) (compound 2), has been isolated in 32% yield and structurally characterised by single-crystal X-ray diffraction, multi-nuclear NMR spectroscopy, mass spectrometry, and computational methods. Both [NMe4]+ or [PPh4]+ salts of anion 2 were found to undergo degradative conversion to the [hypho-6,7-C(2)B(6)H(13)]- anion (anion 3) in alkaline medium. The [PPh4]+ salt of anion 2 converted quantitatively to the [6-CH3-arachno-5,10-C(2)B(8)H(12)]- anion (anion 4) if passed through a silica column or to the neutral 5-CH3-arachno-6,9-C(2)B(8)H(13) (compound 5) on treatment of its [NMe4]+ salt with dilute HCl. Moreover, the reaction of compound 2 with [RhCl2(C(5)Me(5))]2 afforded the eleven-vertex ruthenadicarbaborane [1-C(5)Me(5)-4-CH(3)-closo-1,2,3-RhC(2)B(8)H(9)] (compound 8). All these reactions resulted in an extrusion of one of the cluster carbon atoms into an exoskeletal position.


Dalton Transactions | 2007

Unusual interaction of alkynes with nine-vertex arachno-monocarbaboranes 4-CB8H14 and [4-CB8H13]-.

Bohumil Štíbr; Josef Holub; Mario Bakardjiev; Zbyněk Janoušek

Alkynes R(1)R(2)C(2) react with the neutral monocarbaborane arachno-4-CB(8)H(14) (1) at elevated temperatures (115-120 degrees C) under the formation of the derivatives of the ten-vertex dicarbaborane nido-5,6-C(2)B(8)H(12) (2) of general formula 9-Me-5,6-R1,R2-nido-5,6-C(2)B(8)H(9) (where R1,R2 = H,H 2a; Me,Me 2b; Et,Et 2c, H,Ph 2d, and Ph,Ph 2e) in moderate yields (26-52%). Side reaction with PhC(2)H also yields 1-Ph-6-Me-closo-1,2-C(2)B(8)H(8) (3d). In contrast, the reaction between [arachno-4-CB(8)H(13)](-) anion ((-)) and PhC(2)H produces a mixture of the closo anions [1-CB7H8]- (4-) and [1-CB6H7]- (5-) (yields 32 and 24%, respectively). Individual compounds were isolated and purified by liquid chromatography and characterized by NMR spectroscopy ((11)B, (1)H and (13)C) combined with two-dimensional [(11)B-(11)B]-COSY and (1)H-{(11)B(selective)}NMR techniques.


Inorganica Chimica Acta | 1994

Ten-vertex polyhedral dicarbaborane chemistry: new positional isomers of cluster constituents in the ten-vertex arachnodicarbaborane family: the patent [arachno-5,10-C2B8H13]− anion and the isomeric ligand derivatives exo-9-L-arachno-5,6-C2B8H12 and exo-6-L-arachno-5 ,10-C2B8H12

Josef Holub; Bohumil Štíbr; Zbyněk Janoušek; John D. Kennedy; Mark Thornton-Pett

Abstract Ammonia and primary amines (L=NH 3 and NH 2 Pr n ) react with nido -5,6-C 2 B 8 H 12 in dichloromethane at ambient temperature to give the ligand derivatves exo -9-L-arachno-5,6-C 2 B 8 H 12 , whereas tertiary amines (L = NEt 3 and NBu n 3 ) afford the isomeric compounds exo -6-L- arachno -5,10-C 2 B 8 H 12 ; parent anion [ arachno -5,10-C 2 B 8 H 13 ] − is prepared from the reaction between exo -6-(NEt 3 )- arachno -5,10-C 2 B 8 H 1 2 and sodium metal in thf.


Inorganic Chemistry | 2016

Metal Complexes with Very Large Dipole Moments: the Anionic Carborane Nitriles 12-NC–CB11X11– (X = H, F, CH3) as Ligands on Pt(II) and Pd(II)

Filip Šembera; Jan Plutnar; Alexander Higelin; Zbyněk Janoušek; Ivana Císařová; Josef Michl

The anionic nitriles 1-R-12-NC-CB11H10(-) (R = H, CH3, I, COOH), 12-NC-1-H-CB11Me10(-), and 12-NC-1-H-CB11F10(-) were prepared, and three of them were examined for complex formation with (Et3P)2Pt(II) and (Et3P)2Pd(II). Several stable internally charge-compensated zwitterionic complexes were obtained and characterized. RI-BP86/SV(P) calculations suggest that their dipole moments exceed 20 D. An attempt to measure the dipole moments in solution failed due to insufficient solubility in solvents of low polarity.


RSC Advances | 2015

Cytotoxicity of fluorographene

Wei Zhe Teo; Zdeněk Sofer; Filip Šembera; Zbyněk Janoušek; Martin Pumera

Fluorinated graphenes (F-G) are gaining popularity in recent years and should they be introduced commercially in the future, these nanomaterials will inevitably be released into the environment through disposal or wearing of the products. In view of this, we attempted to investigate the cytotoxicity of three F-G nanomaterials in this study, with the use of two well-established cell viability assays, to find out their impact on mammalian cells and how their physiochemical properties might affect the extent of their cytotoxicity. Cell viability measurements on A549 cells following 24 h exposure to the F-G revealed that F-G does impart dose-dependent toxicological effects on the cells, and the level of cytotoxicity induced by the nanomaterials differed vastly. It was suggested that the fluorine content, in particular the types of fluorine-containing groups present in the nanomaterial played significant roles in affecting its cytotoxicity. In addition, control experiments which were conducted for possible nanomaterial-induced artifacts on the cell viability assays showed that absorbance readouts from the cell viability assays are free from interference from the nanomaterials.


Chemistry: A European Journal | 2015

Electrochemical Fluorographane: Hybrid Electrocatalysis of Biomarkers, Hydrogen Evolution, and Oxygen Reduction

Rui Gusmão; Zdeněk Sofer; Filip Šembera; Zbyněk Janoušek; Martin Pumera

Fluorographane (C1 Hx F1-x+δ )n is a new member of the graphene family that exhibits hydrophobicity and a large band gap that is tunable based on the level of fluorination. Herein, sensing and energy applications of fluorographane are reported. The results reveal that the carbon-to-fluoride ratio of fluorographane has a great impact on the electrochemical performance of the materials. Lowered oxidation potentials for ascorbic and uric acids, in addition to a catalytic effect for hydroquinone and dopamine redox processes, are obtained with a high fluoride content. Moreover, fluorographane, together with residual copper- and nickel-based doping, acted as a hybrid electrocatalyst to promote hydrogen evolution and oxygen reduction reactions with considerably lower onset potentials than those of graphane (starting material), which makes this a promising material for a broad range of applications.


Dalton Transactions | 2006

The first member of the eleven-vertex azadicarbaborane series, 1,6,9-NC2B8H13, and its N-alkyl derivatives.

Zbyněk Janoušek; Radim Dostál; Jan Macháček; Drahomír Hnyk; Bohumil Štíbr

Reactions between closo-1,2-C(2)B(8)H(10) (1) and amines of general formulation R(1)R(2)NH (where R(1), R(2) = H, H; Me, H; t-Bu, H and Et, Et) resulted in a straightforward cluster expansion and formation of the 11-vertex arachno-azadicarbaboranes of the 1,1-R(1),R(2-)1,6,9-NC(2)B(8)H(11) (2) cluster constitution (where R(1), R(2) = H, H 2a; Me, H 2b; t-Bu, H 2c and Et, Et 2d) in yields 10-75%, depending on the nature of the amine used. The reactions are the first example of a direct closo to arachno transformation in the area of cluster-boron compounds. Compounds 2b and 2c were isolated in two isomeric forms anti- and syn- that differ in the positioning of the t-Bu substituent with respect to the bridging hydrogen site. Deprotonation of compounds 2 generally leads to removal of the bridging proton and formation of the [1,1-R(1),R(2-)1,6,9-NC(2)B(8)H(11)](-) (2-) anions that, in the case of the monoalkylated Me and t-Bu derivatives, adopt only an anti configuration. The structure of anti-2c was determined by X-ray diffraction analysis and the geometries of the parent compound and the corresponding syn and anti isomers were optimised at the RMP2/6-31G* level. The composition of all compounds is consistent with the results of mass spectrometry and multinuclear ((1)H and (11)B) spectroscopy complemented by two-dimensional [(11)B-(11)B]-COSY and (1)H{(11)B(selective)} NMR measurements. Experimental (11)B chemical shifts generally show acceptable agreement with theoretical values calculated by GIAO methods, in particular at GIAO-MP2/II, where possible.


Journal of the American Chemical Society | 1999

Synthesis of 12-Substituted 1-Carba-closo-dodecaborate Anions and First Hyperpolarizability of the 12-C7H6+-CB11H11- Ylide

Bohumír Grüner; Zbyněk Janoušek; Benjamin T. King; Jeffrey N. Woodford; C. H. Wang; Václav Všetečka; Josef Michl

Collaboration


Dive into the Zbyněk Janoušek's collaboration.

Top Co-Authors

Avatar

Josef Michl

University of Colorado Boulder

View shared research outputs
Top Co-Authors

Avatar

Filip Šembera

Academy of Sciences of the Czech Republic

View shared research outputs
Top Co-Authors

Avatar

Bohumil Štíbr

Academy of Sciences of the Czech Republic

View shared research outputs
Top Co-Authors

Avatar

Zdeněk Sofer

Institute of Chemical Technology in Prague

View shared research outputs
Top Co-Authors

Avatar

Martin Pumera

Institute of Chemical Technology in Prague

View shared research outputs
Top Co-Authors

Avatar

Bohumír Grüner

Academy of Sciences of the Czech Republic

View shared research outputs
Top Co-Authors

Avatar

Ivana Císařová

Charles University in Prague

View shared research outputs
Top Co-Authors

Avatar

J. Plešek

Czechoslovak Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

Josef Holub

Academy of Sciences of the Czech Republic

View shared research outputs
Top Co-Authors

Avatar

S. Heřmánek

Czechoslovak Academy of Sciences

View shared research outputs
Researchain Logo
Decentralizing Knowledge