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Copyright: UCT Prague 2015
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Department of Inorganic Chemistry guarantees following general studies: General and Inorganic Chemistry I, General and Inorganic Chemistry II and corresponding laboratory courses.

For the "Chemistry and Technologies of Materials" specialization (elective subjects): Structure and Properties of Inorganic Materials and Technologies of the Special Inorganic Materials. Further we carry on the laboratories for the "Special Inorganic Materials" specialization.

Our department is a tutorial workplace for the postgradual Ph.D. students of the "Inorganic Chemistry" specialization and we also participate in teaching of other relative specializations like the "Chemistry and Technologies of the Inorganic Materials" or the "Chemical metalurgy".

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Department of Inorganic Chemistry guarantees following general studies General and Inorganic Chemistry I, General and Inorganic Chemistry II and Laboratories - General and Inorganic Chemistry I, Laboratories - General and Inorganic Chemistry II.

For the "Chemistry and Technologies of Materials" specialization (elective subjects) Structure and Properties of Inorganic Materials and Technologies of the Special Inorganic Materials. Further we carry on the laboratories for the "Special Inorganic Materials" specialization.

Our department is a tutorial workplace for the postgradual Ph.D. students of the "Inorganic Chemistry" specialization and we also participate in teaching of other relative specializations like the "Chemistry and Technologies of the Inorganic Materials" or the "Chemical metalurgy".

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DATA


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Head of group                                                           

Ing. Irena Hoskovcová, CSc.

Assistant Professors

Ing. Jan Holub, Ph.D.
Ing. Hana Kotoučová, Ph.D.
Ing. Martin Pižl, Ph.D.

PGS

Ing. Alice Kulagová

Technicians

Alice Kulagová

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 ◳ jan_holub_1 (jpg) → (šířka 215px)

Contact

office A203
CV
email

Aim of the group

Our group is interested in coordination chemistry, especially in a relationships between structural factors and application of organometallic complexes for functional materials and sustainable (electro)transformations of small molecules (H2O, CO2).

Our field spreads exactly on the line between organic, inorganic and material chemistry. This brings unique opportunity for students to gain experience in organic synthesis of organic ligand backbone, learn about the different aspects of various metals and get hands-on training with various spectroscopic and electrochemical methods.

If you like to solve scientific riddles, you are not afraid of complex interdisciplinary tasks or you would like to become an all-round versatile scientist, come and join our team! We will welcome you!

Topics

Supramolecular grids

Electrocatalysis for sustainable hydrogen production

One of our main topics deals with so-called Supramolecular grids. These are multicomponent organometallic complexes with very regular rectangular geometry. This feature predetermines them for use in nanoelectronics. In our group we want to take advantage of this spatial arrangement to study their properties on surface for potential applications in nanoelectronics. Another important feature of the grids is their metalo-responsive self-assembling formation, which we would like to use in creation of recyclable surface-bound platform for sensors and (electro)catalysis. Furthermore, the mentioned multicomponent nature means that with appropriate functionalizition these grids could be used as multivalent platforms for the studies of biochemical interactions.

 ◳ Fig1_JH (png) → (šířka 450px)

 ◳ Fig2_JH (png) → (šířka 450px)

The work is based a series of peripherally decorated metallosupramolecular grids, which create extended interconnected 2D arrays, bioactive multivalent compounds and responsive materials. The development of novel and versatile (bi-)functionalized grids with accurately spatially distributed and tailored functionalities combined with a help of dynamic covalent chemistry (DCC), will allow to address all below presented topics with just a small library of easily accessible starting complexes.

1) The multivalency studies:  Newly designed multifunctional grids with different active moieties situated in two orthogonal planes will be prepared and used as a customable platform for analytic and biochemical use (e.g. Multivalent inhibitors, Cell imagining, Molecular glues).

 ◳ Fig4_JH (png) → (šířka 450px)

2) The surface applications: Several ideas will be tested to achieve a stable surface deposition of herein prepared grids. Strategies, such as intensification of the surface coordination through addition of strongly interacting moieties (e.g. pyrenes) or through grids oligomerization (Figure 1, Bottom) as well as direct covalent attachment will be used to address different applications. Among others, the highly regular geometry of the grids array is an ideal frame for molecular electronics, spintronics and magnetics. Of particular appeal is the idea of “quantum cellular automata[1], where information storage is based on an array of the different redox states rather than on points capable of current transmission.

 ◳ Fig5_JH (png) → (šířka 450px)

3) The material chemistry: The grid ligands will be incorporated into the polymer matrix and used to alter its physical properties through metal asserted control of different complexation states (ligand/helicate/grid). Furthermore, an application of the electrochemical oxidation/reduction should result in reversible switching between two states providing “smart material, usable in, for example, artificial muscles.

 ◳ Fig6_JH (png) → (šířka 450px)

  • Ruben , J. Rojo , F. J. Romero-Salguero , L. H. Uppadine and J.-M. Lehn , Grid–Type Metal Ion Architectures: Functional Metallosupramolecular Arrays, Angew. Chem., Int. Ed., 2004, 43, 3644 —3662
  • G. Hardy Metallosupramolecular grid complexes: towards nanostructured materials with high-tech applications, Chem. Soc. Rev., 2013, 42, 7881 —7899
  • Holub, J.; Santoro, A.; Stadler, A.-M.; Lehn, J.-M. Peripherally Multi-Functionalised Metallosupramolecular Grids: Assembly, Decoration, Building Blocks for Dynamic Covalent Architectures, Inorg. Chem. Front. 2021, 8 (23), 5054-5064

Even though, a lot of effort is invested into creation of evermore complicated molecules for drugs and materials, it is small molecules which have the power to change our world. For example, water oxidation is considered as a key for sustainable energy as green source of H2 and CO2 reduction and valorisation could help reduce our dependence on fossil fuels and thus slow down global warming.

In our group we are developing Ruthenium based organometallic (electro)catalysts for water oxidation and its newly emerging alternative ammonia oxidation. With robust catalysts in hand, in the future our focus will turn to other transformations such as CO2 and N2 reduction and/or utilization of cheap 1st row transition metals (e.g. Fe, Co, Mn).

 ◳ Fig3_JH (png) → (šířka 450px)

  • Matheu, R.; Garrido-Barros, P.; Gil-Sepulcre, M.; Ertem, M. Z.; Sala, X.; Gimbert-Suriñach, C.; Llobet, A. The Development of Molecular Water Oxidation Catalysts. Nat. Rev. Chem. 2019, 3 (5), 331341
  • Dunn, P. L.; Cook, B. J.; Johnson, S. I.; Appel, A. M.; Bullock, R. M. Oxidation of Ammonia with Molecular Complexes. J. Am. Chem. Soc. 2020, 142 (42), 1784517858,
  • Holub, J.; Vereshchuk, N.; Sánchez-Baygual, F.-J.; Gil-Sepulcre, M.; Benet-Buchholz, J.; and Llobet A. Synthesis, Structure, and Ammonia Oxidation Catalytic Activity of Ru-NH3 Complexes Containing Multidentate Polypyridyl Ligands Inorg. Chem. 2021, 60 (18), 13929–13940
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 ◳ jan_holub_1 (jpg) → (šířka 215px)Ing. Jan Holub, PhD

E-mail: holubj@vscht.cz
Birth date: 02/09/1988
Nationality: Czech Republic
Orcid: 0000-0001-9472-9131

Profile

An all-round chemist with 8+ years of laboratory experience, apprentice supervision and laboratory teaching practice. Friendly, outgoing and depression resistant. Seasoned in accident solving, fighting with failures and delivering results regardless of obstacles.
Broad international experiences (3 Countries, 4 Groups) with a deep understanding of all research stages.
Published results in high impact journals (J. Am. Chem. Soc., Chem. Sci., Inorg. Chem. Etc.) Publications: 9; H-index: 6, Citacions: 123
Involved in projects spanning from dynamic systems responding to outside stimuli, self-assembling shape-changing supramolecular complexes all the way to projects addressing environmental and sustainable energy issues such as electrochemical CO2 reduction.

Research Experience and Education

Junior Group Leader – Group of Coordination Chemistry; Department of Inorganic Chemistry, University of Chemistry and Technology, Prague, Czech republic (2.2.2022-PRESENT)

  • Supramolecular chemistry of molecular grids and metalo-driven self-assembly
  • Electrocatalytic activation of small molecules
  • Water and Ammonia oxidation for green hydrogen production using transition metal molecular (electro)catalysts

Laboratory and Project Manager (Prof. G. Bernardes); Yusuf Hamied department of chemistry, University of Cambridge, Cambridge, United Kingdom (2.8.2021-31.1.2022)

  • Students’ induction into laboratory
  • Management of accompanying funding administration – reports, filling of spending and working statements, negotiation and purchase of laboratory equipments

The 5 months gap was caused by problems in acquiring UK Working Visa during COVID19 restrictions.

Postdoctoral research (Prof. A. Llobet); Institute of Chemical Research of Catalonia (ICIQ), Tarragona, Spain (1.7.2017-26.2.2021)

  • Electrochemical transformations– H2O, NH3, CO2, N2 oxidations and reductions.
  • First in the group to develop ammonia oxidation research line

Ph.D. study and research (Prof. J.-M. Lehn - Nobel prize laureate); Institut de Sciencia et d’Ingénierie Supramoleculaires (I.S.I.S), University of Strasbourg, France (26.9.2012-28.9.2016) (29.9.2016-30.6-2017 – Postdoc)

PhD thesis: Generation of Coordination Architectures from Dynamic Covalent Ligand Libraries

  • Stimuli-responsive dynamic combinatorial networks – Developed proof of concept dual metallo-trainable dynamic network based on dynamic covalent chemistry (DCC) of imines
  • Self-assembling metalosupramolecular grids and helicates – First to prepare and and characterize folded and aldehyde decorated grids with use in DCC

MSc. and BSc. Studies (Prof. P. Lhoták); University of Chemistry and Technology (UCT), Prague, Czech Republic (2007-2012)

Master’s degree research topic: Upper rim substitution of calix[4]arenes: Use of directed C-H activation for meta substitution of the upper rim of the calixarenes

  • First example of intramolecularly bridged calixarene

Bachelor’s degree research topic: Design and synthesis of dendrimers based on thiacalix[4]arene derivatives

ERASMUS internship, University of Valencia, Valencia, Spain                 2011 –February - July

Contract worker in a chemical factory; Synthesia, Pardubice, Czech Rep.                           2006-2008

Personal skills and Competences

Teaching:

External examiner of Master and Bachelor theses at UCT, Prague and Technical University of Liberec (TUL), Czech republic. External evaluator of PhD applications at BIST-UPF Master - Barcelona Institute of Science and Technology (BIST) and Universidad Pompeu Fabra (UPF).

As a senior demonstrator at the University of Cambridge students’ course of Organic laboratories was responsible for the supervision, testing and grading of students’ tasks and projects

Languages:

Czech:.......................... Native
English: ....................... Proficient user. Fluent in spoken and written English
Russian:........................ Proficient user. Good spoken and written Russian
Spanish:........................ Independent user. Basic conversation and written text.
French:......................... Passive user. Understanding of the spoken language and written text

List of Fundings

2012-2016.................... PhD funding grant from the University of Strasbourg (France)
2018-2021.................... PROBIST – Joint Postdoctoral fellowship between BIST and Marie Skłodowska-Curie grant
2022-2024........................Starting grant - Dagmar Procházková Fund – Starting grant for young scientists establishing their independent group at the UCT, Prague

 List of publications

  • Holub, J.; Eigner, V.; Vrzal, L.; Dvořáková, H.; Lhoták, P. Calix[4]arenes with Intramolecularly Bridged Meta Positions Prepared via Pd-Catalysed Double C–H Activation. Commun. 2013, 49 (27). DOI:10.1039/c3cc40655e
  • Holub, J.; Vantomme, G.; Lehn, J.-M. Training a Constitutional Dynamic Network for Effector Recognition: Storage, Recall, and Erasing of Information. Am. Chem. Soc., 2016, 138 (36). DOI:10.1021/jacs.6b05785
  • Dhers, S.; Holub, J.; Lehn, J.-M. Coevolution and Ratiometric Behaviour in Metal Cation-Driven Dynamic Covalent Systems. Sci. 2017, 8 (3), 2125-2130. DOI:10.1039/c6sc04662b
  • Holub, J.; Santoro, A.; Lehn, J.-M. Electronic Absorption and Emission Properties of Bishydrazone [2 × 2] Metallosupramolecular Grid-Type Architectures. Inorganica Chim. Acta, 2019, 494. DOI:10.1016/j.ica.2019.05.017
  • Ghaderian, A.; Holub, J.; Benet-Buchholz, J.; Llobet, A.; Gimbert-Suriñach, C. A Ru-Bda Complex with a Dangling Carboxylate Group: Synthesis and Electrochemical Properties. Chem., 2020, 59 (7), 4443–4452. DOI:10.1021/acs.inorgchem.9b03595
  • Santoro, A.; Holub, J.; Fik-Jaskółka M. A., Vantomme G.; Lehn J.-M. Dynamic Helicates Self-Assembly from Homo- and Heterotopic Dynamic Covalent Ligand Strands Eur. J. 2020, 26, 15664-15671. DOI: 10.1002/chem.202003496
  • Vereshchuk, N.; Holub, J.; Benet-Buchholz, J.; Llobet A. The Fate of Molecular Ru-phosphonate Water Oxidation Catalyst under Turnover Conditions. ACS Catal. 2021, 11, 5240–5247, DOI: 10.1021/acscatal.0c05363
  • Holub, J.; Vereshchuk, N.; Sánchez-Baygual, F.-J.; Gil-Sepulcre, M.; Benet-Buchholz, J.; and Llobet A. Synthesis, Structure, and Ammonia Oxidation Catalytic Activity of Ru-NH3 Complexes Containing Multidentate Polypyridyl Ligands, Chem. 2021, 60 (18), 13929–13940, DOI: 10.1021/acs.inorgchem.1c01528
  • Holub, J.; Santoro, A.; Stadler, A.-M.; Lehn, J.-M. Peripherally Multi-Functionalised Metallosupramolecular Grids: Assembly, Decoration, Building Blocks for Dynamic Covalent Architectures, Chem. Front. 2021, 8 (23), 5054-5064, DOI: https://doi.org/10.1039/D1QI01084K
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pizl (ořez 215*215px)

 

Contact

UCT Prague
Room A213
e-mail: martin.pizl{at}vscht{dot}cz

Lectures at UCT Prague

General and Inorganic Chemistry I
Inorganic Chemistry: Laboratory I
Inorganic Chemistry: Laboratory II

 

Filed of research

1) vibrational spectroscopy of coordination compounds (FTIR, TRIR, 2DIR, T-2DIR, Raman)
2) electrochemistry and spectroelectrochemistry
3) quantum chemical calculations of properties of the coordination compounds (Gaussian, Orca, Molcas etc.)

Publications

  • Sumner, E.; Pižl, M.; McQuaid, K. T.; Hartl, F. Nitrile Substituents at the Conjugated Dipyridophenazine Moiety as Infrared Redox Markers in Electrochemically Reduced Heteroleptic Ru(II) Polypyridyl Complexes. Inorganic Chemistry 2024, 63 (5), 2460-2469.
  • Štefanková, D.; Skrbek, K.; Pižl, M.; Bartůněk, V. Nano and mesosized selenium and its synthesis using the ascorbic acid route. Journal of Non-Crystalline Solids 2023, 616, 122462. 
  • Kearney, L.; Brandon, M. P.; Coleman, A.; Chippindale, A. M.; Hartl, F.; Lalrempuia, R.; Pižl, M.; Pryce, M. T. Ligand-Structure Effects on N-Heterocyclic Carbene Rhenium Photo- and Electrocatalysts of CO2 Reduction. Molecules 2023, 28 (10), 4149.
  • Pižl, M.; Hunter, B. M.; Sazanovich, I. V.; Towrie, M.; Gray, H. B.; Záliš, S.; Vlček, A., Excitation-Wavelength-Dependent Photophysics of d8d8 Di-isocyanide Complexes. Inorganic Chemistry 2022, 61 (6), 2745-2759
  • Taylor, J. O.; Pižl, M.; Kloz, M.; Rebarz, M.; McCusker, C. E.; McCusker, J. K.; Záliš, S.; Hartl, F.; Vlček, A., Optical and Infrared Spectroelectrochemical Studies of CN-Substituted Bipyridyl Complexes of Ruthenium(II).Inorganic Chemistry 2021, 60 (6), 3514-3523
  • Sondermann, C.; Pižl, M.; Paretzki, A.; Feil, C.; Ringenberg, M. R.; Záliš, S.; Kaim, W., Analysis of a Diimine-Organonickel Redox Series. Eur J Inorg Chem 2020, 2020 (31), 3010-3015.
  • Pižl, M.; Picchiotti, A.; Rebarz, M.; Lenngren, N.; Yingliang, L.; Záliš, S.; Kloz, M.; Vlček, A., Time-Resolved Femtosecond Stimulated Raman Spectra and DFT Anharmonic Vibrational Analysis of an Electronically Excited Rhenium Photosensitizer. The Journal of Physical Chemistry A 2020, 124 (7), 1253-1265.
  • Guricová, M.; Tobrman, T.; Pižl, M.; Žižková, S.; Hoskovcová, I.; Dvořák, D., Synthesis, characterisation and electrochemical properties of Cr(0) aminocarbene complexes containing condensed heteroaromatic moiety. J Organomet Chem 2020, 905, 121023.
  • Takematsu, K.; Pospíšil, P.; Pižl, M.; Towrie, M.; Heyda, J.; Záliš, S.; Kaiser, J. T.; Winkler, J. R.; Gray, H. B.; Vlček, A., Hole Hopping Across a Protein–Protein Interface. The Journal of Physical Chemistry B 2019, 123 (7), 1578-1591.
  • Chen, L.; Lim, K. J. C.; Babra, T. S.; Taylor, J. O.; Pižl, M.; Evans, R.; Chippindale, A. M.; Hartl, F.; Colquhoun, H. M.; Greenland, B. W. A macrocyclic receptor containing two viologen species connected by conjugated terphenyl groups. Organic & Biomolecular Chemistry 2018, 16 (27), 5006-5015
  • Pižl, M.; Jankovský, O.; Guricová, M.; Hoskovcová, I.; Sedmidubský, D.; Bartůněk, V. Mixed Yttrium–Ytterbium–Erbium Schiff Base Complex as a Model Precursor for Mixed Nanosized Rare Earths Oxides. Journal of Cluster Science 2018, 29 (4), 549-553
  • Guricová, M.; Pižl, M.; Smékal, Z.; Nádherný, L.; Čejka, J.; Eigner, V.; Hoskovcová, I., Template synthesis and structure of Co(II), Ni(II), and Cu(II) complexes with pyridoxilydenetaurinate Schiff base ligand. Inorganica Chimica Acta 2018, 477, 248-256.
  • Pižl, M.; Hunter, B. M.; Greetham, G. M.; Towrie, M.; Záliš, S.; Gray, H. B.; Vlček, A., Ultrafast Wiggling and Jiggling: Ir2(1,8-diisocyanomenthane)42+. The Journal of Physical Chemistry A 2017, 121 (48), 9275-9283.
  • Murašková, V.; Szabó, N.; Pižl, M.; Hoskovcová, I.; Dušek, M.; Huber, Š.; Sedmidubský, D., Self assembly of dialkoxo bridged dinuclear Fe(III) complex of pyridoxal Schiff base with CC bond formation – Structure, spectral and magnetic properties. Inorganica Chimica Acta  2017, 461, 111-119.
  • Pižl, M.; Jankovský, O.; Ulbrich, P.; Szabó, N.; Hoskovcová, I.; Sedmidubský, D.; Bartůněk, V., Facile preparation of nanosized yttrium oxide by the thermal decomposition of amorphous Schiff base yttrium complex precursor. Journal of Organometallic Chemistry  2017, 830, 146-149.
  • Langmaier, J.; Pižl, M.; Samec, Z.; Záliš, S.; Extreme Basicity of Biguanide Drugs in Aqueous Solutions: Ion Transfer Voltammetry and DFT Calculations. The Journal of Physical Chemistry A 2016, 120 (37), 7344-7350.

Ph.D thesis

Coordination compounds of non-innocent ligands: Theoretical treatment of their spectra and redox behaviour

Master thesis

Vibrační spektra komplexů přechodných kovů s ligandy odvozenými od vitaminu B6: interpretace pomocí DFT výpočtů.

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