MINECO [CTQ2014-59212-P, CTQ2015-70851-ERC]

Link to this page

MINECO [CTQ2014-59212-P, CTQ2015-70851-ERC]

Authors

Publications

Rotating Iron and Titanium Sandwich Complexes

Vlahović, Filip; Gruden-Pavlović, Maja; Swart, Marcel

(Wiley-V C H Verlag Gmbh, Weinheim, 2018)

TY  - JOUR
AU  - Vlahović, Filip
AU  - Gruden-Pavlović, Maja
AU  - Swart, Marcel
PY  - 2018
UR  - https://cherry.chem.bg.ac.rs/handle/123456789/2129
AB  - The origin for the rotational barrier of organometallic versus inorganic sandwich complexes has remained enigmatic for the past decades. Here, we investigate in detail what causes the substantial barrier for titanodecaphosphacene through spin-state consistent density functional theory. Orbital interactions are shown to be the determining factor.
PB  - Wiley-V C H Verlag Gmbh, Weinheim
T2  - Chemistry. A European Journal
T1  - Rotating Iron and Titanium Sandwich Complexes
VL  - 24
IS  - 20
SP  - 5070
EP  - 5073
DO  - 10.1002/chem.201704829
ER  - 
@article{
author = "Vlahović, Filip and Gruden-Pavlović, Maja and Swart, Marcel",
year = "2018",
abstract = "The origin for the rotational barrier of organometallic versus inorganic sandwich complexes has remained enigmatic for the past decades. Here, we investigate in detail what causes the substantial barrier for titanodecaphosphacene through spin-state consistent density functional theory. Orbital interactions are shown to be the determining factor.",
publisher = "Wiley-V C H Verlag Gmbh, Weinheim",
journal = "Chemistry. A European Journal",
title = "Rotating Iron and Titanium Sandwich Complexes",
volume = "24",
number = "20",
pages = "5070-5073",
doi = "10.1002/chem.201704829"
}
Vlahović, F., Gruden-Pavlović, M.,& Swart, M.. (2018). Rotating Iron and Titanium Sandwich Complexes. in Chemistry. A European Journal
Wiley-V C H Verlag Gmbh, Weinheim., 24(20), 5070-5073.
https://doi.org/10.1002/chem.201704829
Vlahović F, Gruden-Pavlović M, Swart M. Rotating Iron and Titanium Sandwich Complexes. in Chemistry. A European Journal. 2018;24(20):5070-5073.
doi:10.1002/chem.201704829 .
Vlahović, Filip, Gruden-Pavlović, Maja, Swart, Marcel, "Rotating Iron and Titanium Sandwich Complexes" in Chemistry. A European Journal, 24, no. 20 (2018):5070-5073,
https://doi.org/10.1002/chem.201704829 . .
6
2
2
2
1

Rotating Iron and Titanium Sandwich Complexes

Vlahović, Filip; Gruden-Pavlović, Maja; Swart, Marcel

(Wiley-V C H Verlag Gmbh, Weinheim, 2018)

TY  - JOUR
AU  - Vlahović, Filip
AU  - Gruden-Pavlović, Maja
AU  - Swart, Marcel
PY  - 2018
UR  - https://cherry.chem.bg.ac.rs/handle/123456789/2983
AB  - The origin for the rotational barrier of organometallic versus inorganic sandwich complexes has remained enigmatic for the past decades. Here, we investigate in detail what causes the substantial barrier for titanodecaphosphacene through spin-state consistent density functional theory. Orbital interactions are shown to be the determining factor.
PB  - Wiley-V C H Verlag Gmbh, Weinheim
T2  - Chemistry. A European Journal
T1  - Rotating Iron and Titanium Sandwich Complexes
VL  - 24
IS  - 20
SP  - 5070
EP  - 5073
DO  - 10.1002/chem.201704829
ER  - 
@article{
author = "Vlahović, Filip and Gruden-Pavlović, Maja and Swart, Marcel",
year = "2018",
abstract = "The origin for the rotational barrier of organometallic versus inorganic sandwich complexes has remained enigmatic for the past decades. Here, we investigate in detail what causes the substantial barrier for titanodecaphosphacene through spin-state consistent density functional theory. Orbital interactions are shown to be the determining factor.",
publisher = "Wiley-V C H Verlag Gmbh, Weinheim",
journal = "Chemistry. A European Journal",
title = "Rotating Iron and Titanium Sandwich Complexes",
volume = "24",
number = "20",
pages = "5070-5073",
doi = "10.1002/chem.201704829"
}
Vlahović, F., Gruden-Pavlović, M.,& Swart, M.. (2018). Rotating Iron and Titanium Sandwich Complexes. in Chemistry. A European Journal
Wiley-V C H Verlag Gmbh, Weinheim., 24(20), 5070-5073.
https://doi.org/10.1002/chem.201704829
Vlahović F, Gruden-Pavlović M, Swart M. Rotating Iron and Titanium Sandwich Complexes. in Chemistry. A European Journal. 2018;24(20):5070-5073.
doi:10.1002/chem.201704829 .
Vlahović, Filip, Gruden-Pavlović, Maja, Swart, Marcel, "Rotating Iron and Titanium Sandwich Complexes" in Chemistry. A European Journal, 24, no. 20 (2018):5070-5073,
https://doi.org/10.1002/chem.201704829 . .
6
2
2
2
1

Supplementary data for the article: Vlahovic, F.; Gruden, M.; Swart, M. Rotating Iron and Titanium Sandwich Complexes. Chemistry - A European Journal 2018, 24 (20), 5070–5073. https://doi.org/10.1002/chem.201704829

Vlahović, Filip; Gruden-Pavlović, Maja; Swart, Marcel

(Wiley-V C H Verlag Gmbh, Weinheim, 2018)

TY  - DATA
AU  - Vlahović, Filip
AU  - Gruden-Pavlović, Maja
AU  - Swart, Marcel
PY  - 2018
UR  - https://cherry.chem.bg.ac.rs/handle/123456789/3005
PB  - Wiley-V C H Verlag Gmbh, Weinheim
T2  - Chemistry. A European Journal
T1  - Supplementary data for the article: Vlahovic, F.; Gruden, M.; Swart, M. Rotating Iron and Titanium Sandwich Complexes. Chemistry - A European Journal 2018, 24 (20), 5070–5073. https://doi.org/10.1002/chem.201704829
UR  - https://hdl.handle.net/21.15107/rcub_cherry_3005
ER  - 
@misc{
author = "Vlahović, Filip and Gruden-Pavlović, Maja and Swart, Marcel",
year = "2018",
publisher = "Wiley-V C H Verlag Gmbh, Weinheim",
journal = "Chemistry. A European Journal",
title = "Supplementary data for the article: Vlahovic, F.; Gruden, M.; Swart, M. Rotating Iron and Titanium Sandwich Complexes. Chemistry - A European Journal 2018, 24 (20), 5070–5073. https://doi.org/10.1002/chem.201704829",
url = "https://hdl.handle.net/21.15107/rcub_cherry_3005"
}
Vlahović, F., Gruden-Pavlović, M.,& Swart, M.. (2018). Supplementary data for the article: Vlahovic, F.; Gruden, M.; Swart, M. Rotating Iron and Titanium Sandwich Complexes. Chemistry - A European Journal 2018, 24 (20), 5070–5073. https://doi.org/10.1002/chem.201704829. in Chemistry. A European Journal
Wiley-V C H Verlag Gmbh, Weinheim..
https://hdl.handle.net/21.15107/rcub_cherry_3005
Vlahović F, Gruden-Pavlović M, Swart M. Supplementary data for the article: Vlahovic, F.; Gruden, M.; Swart, M. Rotating Iron and Titanium Sandwich Complexes. Chemistry - A European Journal 2018, 24 (20), 5070–5073. https://doi.org/10.1002/chem.201704829. in Chemistry. A European Journal. 2018;.
https://hdl.handle.net/21.15107/rcub_cherry_3005 .
Vlahović, Filip, Gruden-Pavlović, Maja, Swart, Marcel, "Supplementary data for the article: Vlahovic, F.; Gruden, M.; Swart, M. Rotating Iron and Titanium Sandwich Complexes. Chemistry - A European Journal 2018, 24 (20), 5070–5073. https://doi.org/10.1002/chem.201704829" in Chemistry. A European Journal (2018),
https://hdl.handle.net/21.15107/rcub_cherry_3005 .

Spinning around in Transition-Metal Chemistry

Swart, Marcel; Gruden-Pavlović, Maja

(Amer Chemical Soc, Washington, 2016)

TY  - JOUR
AU  - Swart, Marcel
AU  - Gruden-Pavlović, Maja
PY  - 2016
UR  - https://cherry.chem.bg.ac.rs/handle/123456789/2367
AB  - CONSPECTUS: The great diversity and richness of transition metal chemistry, such as the features of an open d-shell, opened a way to numerous areas of scientific research and technological applications. Depending on the nature of the metal and its environment, there are often several energetically accessible spin states, and the progress in accurate theoretical treatment of this complicated phenomenon is presented in this Account. The spin state energetics of a transition metal complex can be predicted theoretically on the basis of density functional theory (DFT) or wave function based methodology, where DFT has advantages since it can be applied routinely to medium-to-large-sized molecules and spin-state consistent density functionals are now available. Additional factors such as the effect of the basis set, thermochemical contributions, solvation, relativity, and dispersion, have been investigated by many researchers, but challenges in unambiguous assignment of spin states still remain. The first DFT studies showed intrinsic spin-state preferences of hybrid functionals for high spin and early generalized gradient approximation functionals for low spin. Progress in the development of density functional approximations (DFAs) then led to a class of specially designed DFAs, such as OPBE, SSB-D, and S12g, and brought a very intriguing and fascinating observation that the spin states of transition metals and the S(N)2 barriers of organic molecules are somehow intimately linked. Among the many noteworthy results that emerged from the search for the appropriate description of the complicated spin state preferences in transition metals, we mainly focused on the examination of the connection between the spin state and the structures or coordination modes of the transition metal complexes. Changes in spin states normally lead only to changes in the metal ligand bond lengths, but to the best of our knowledge, the dapsox ligand showed the first example of a transition-metal complex where a change in spin state leads also to changes in the coordination, switching between pentagonal-bipyramidal and capped-octahedron. Moreover, we have summarized the results of the thorough study that corrected the experimental assignment of the nature of the recently synthesized Sc3+ adduct of [Fe-IV(O)(TMC)](2+) (TMC = 1,4,8,11-tetramethylcyclam) and firmly established that the Sc3+-capped iron-oxygen complex corresponds to high-spin Fe-III. Last, but not least, we have provided deeper insight and rationalization of the observation that unlike in metalloenzymes, where the Fe-IV-oxo is usually observed with high spin, biomimetic Fe-IV-oxo complexes typically have a intermediate spin state. Energy decomposition analyses on the trigonal-bypiramidal (TBP) and octahedral model systems with ammonia ligands have revealed that the interaction energy of the prepared metal ion in the intermediate spin state is much smaller for the TBP structure. This sheds light on the origin of the intermediate spin state of the biomimetic TBP Fe-IV-oxo complexes.
PB  - Amer Chemical Soc, Washington
T2  - Accounts of Chemical Research
T1  - Spinning around in Transition-Metal Chemistry
VL  - 49
IS  - 12
SP  - 2690
EP  - 2697
DO  - 10.1021/acs.accounts.6b00271
ER  - 
@article{
author = "Swart, Marcel and Gruden-Pavlović, Maja",
year = "2016",
abstract = "CONSPECTUS: The great diversity and richness of transition metal chemistry, such as the features of an open d-shell, opened a way to numerous areas of scientific research and technological applications. Depending on the nature of the metal and its environment, there are often several energetically accessible spin states, and the progress in accurate theoretical treatment of this complicated phenomenon is presented in this Account. The spin state energetics of a transition metal complex can be predicted theoretically on the basis of density functional theory (DFT) or wave function based methodology, where DFT has advantages since it can be applied routinely to medium-to-large-sized molecules and spin-state consistent density functionals are now available. Additional factors such as the effect of the basis set, thermochemical contributions, solvation, relativity, and dispersion, have been investigated by many researchers, but challenges in unambiguous assignment of spin states still remain. The first DFT studies showed intrinsic spin-state preferences of hybrid functionals for high spin and early generalized gradient approximation functionals for low spin. Progress in the development of density functional approximations (DFAs) then led to a class of specially designed DFAs, such as OPBE, SSB-D, and S12g, and brought a very intriguing and fascinating observation that the spin states of transition metals and the S(N)2 barriers of organic molecules are somehow intimately linked. Among the many noteworthy results that emerged from the search for the appropriate description of the complicated spin state preferences in transition metals, we mainly focused on the examination of the connection between the spin state and the structures or coordination modes of the transition metal complexes. Changes in spin states normally lead only to changes in the metal ligand bond lengths, but to the best of our knowledge, the dapsox ligand showed the first example of a transition-metal complex where a change in spin state leads also to changes in the coordination, switching between pentagonal-bipyramidal and capped-octahedron. Moreover, we have summarized the results of the thorough study that corrected the experimental assignment of the nature of the recently synthesized Sc3+ adduct of [Fe-IV(O)(TMC)](2+) (TMC = 1,4,8,11-tetramethylcyclam) and firmly established that the Sc3+-capped iron-oxygen complex corresponds to high-spin Fe-III. Last, but not least, we have provided deeper insight and rationalization of the observation that unlike in metalloenzymes, where the Fe-IV-oxo is usually observed with high spin, biomimetic Fe-IV-oxo complexes typically have a intermediate spin state. Energy decomposition analyses on the trigonal-bypiramidal (TBP) and octahedral model systems with ammonia ligands have revealed that the interaction energy of the prepared metal ion in the intermediate spin state is much smaller for the TBP structure. This sheds light on the origin of the intermediate spin state of the biomimetic TBP Fe-IV-oxo complexes.",
publisher = "Amer Chemical Soc, Washington",
journal = "Accounts of Chemical Research",
title = "Spinning around in Transition-Metal Chemistry",
volume = "49",
number = "12",
pages = "2690-2697",
doi = "10.1021/acs.accounts.6b00271"
}
Swart, M.,& Gruden-Pavlović, M.. (2016). Spinning around in Transition-Metal Chemistry. in Accounts of Chemical Research
Amer Chemical Soc, Washington., 49(12), 2690-2697.
https://doi.org/10.1021/acs.accounts.6b00271
Swart M, Gruden-Pavlović M. Spinning around in Transition-Metal Chemistry. in Accounts of Chemical Research. 2016;49(12):2690-2697.
doi:10.1021/acs.accounts.6b00271 .
Swart, Marcel, Gruden-Pavlović, Maja, "Spinning around in Transition-Metal Chemistry" in Accounts of Chemical Research, 49, no. 12 (2016):2690-2697,
https://doi.org/10.1021/acs.accounts.6b00271 . .
30
119
85
111
109