| Literature DB >> 35543697 |
Jan M Rall1, Marcel Schorpp1, Martin Keilwerth2, Maximilian Mayländer3, Christian Friedmann1, Michael Daub1, Sabine Richert3, Karsten Meyer2, Ingo Krossing1.
Abstract
The open-shell iron pentacarbonyl cation [Fe(CO)5 ].+ was isolated by deelectronation, i.e., the single-electron oxidation of the parent neutral Fe(CO)5 using [phenazineF ].+ as the [Al(ORF )4 ]- and [F-{Al(ORF )3 }2 ]- salt (RF =C(CF3 )3 ; phenazineF =perfluoro-5,10-bis(perfluorophenyl)-5,10-dihydrophenazine). [Fe(CO)5 ].+ [Al(ORF )4 ]- was fully characterized (scXRD analysis, IR, NMR, EPR, 57 Fe spectroscopy, CV and SQUID magnetization study) and, apart from being a compound of fundamental interest, may serve as a precursor for low-valent iron coordination chemistry.Entities:
Keywords: Carbonyl Ligands; Iron; Radical Ions; Weakly Coordinating Anions
Year: 2022 PMID: 35543697 PMCID: PMC9401057 DOI: 10.1002/anie.202204080
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 16.823
Figure 1a) Molecular structure of [Fe(CO)5].+[Al(ORF)4]− (1) (P212121, R 1=5.4 %, wR 2=9.0 %); thermal ellipsoids set at 50 % probability. b) Experimental ZnSe‐ATR FT‐IR spectrum of solid 1. c) Experimental and simulated Q‐band (34 GHz), continuous‐wave EPR spectra of solid 1 at 100 K, a potential impurity is marked by an asterisk. d) The carbonyl region of experimental ZnSe‐ATR FT‐IR spectrum of solid 1 (black), 1 in 4FB (gray), solid 2 (green) and calculated (@BP86‐(D3BJ)/def2‐TZVPP) 13C IR spectrum of the superposition of all possible isotopomers weighed by their natural abundance (blue). Double or more 13C substitution were neglected.
Experimental and calculated spectroscopic and structural data of [Fe(CO)5 oDFB].+[Al(ORF)4]−, 1 and 2. All calculations were done at the BP86‐(D3BJ)/def2‐TZVPP level of theory.
|
|
IR[a] solid |
IR[a] solution |
IR calc. ( |
IR[b] calc. |
IR calc. ( |
avg. |
avg. |
|---|---|---|---|---|---|---|---|
|
[Fe(CO)5
|
2083 (vw)[c] 2110 (w) 2116 (w) 2128 (vw) |
2090 (vw)[c,d] 2112 (s)[d] |
– |
– |
– |
ax.: 1.907(3) eq.: 1.874(5) |
ax.: 1.105(3) eq.: 1.118(6) |
|
[Fe(CO)5].+ [Al(ORF)4]− ( |
2082 (vw)[c] 2113 (s) 2128 (w) |
2084 (vw)[c,e] 2115 (s)[e] |
2102 (100), |
2071 (2)[b] 2102 (100)[b] |
2063 (100) 2075 (75) 2099 (22) 2141 (26) 2179 (6) |
ax.: 1.910(4) eq.: 1.872(5) |
ax.: 1.115(5) eq.: 1.126(6) |
|
[Fe(CO)5].+ [F‐{Al(ORF)3}2]− ( |
2084 (vw)[c] 2116 (s) |
– |
– |
– |
– |
ax.: 1.903(4) eq.: 1.872(4) |
ax.: 1.118(4) eq.: 1.118(5) |
[a] v: very, s: strong, w: weak. [b] Superposition of the CO‐stretches calculated for a C 4v ground state including the relative contributions of the 13C natural abundance isotope. Individual contributions: 13CO axial C 4v: A 1 2061 (43), E 2102 (100), B 1 2120 (0), A 1 2168 (3) and 13CO equat. 2065 (73), 2102 (100), 2106 (50), 2115 (19), 2164 (3). [c] Probably the 13CO stretch. [d] Measured in oDFB. [e] Measured in 4FB. [f] Calculated CO bands in the presence of −0.3e point charges obtained from scXRD.
Figure 2Zero‐field 57Fe Mössbauer spectrum of a solid sample of 1 recorded at 77 K (left). The gray circles are experimental data and the solid black line represents the numerical fit. Cyclic voltammogram of 1 (10 mM) in 4FB with [NBu4][Al(ORF)4] as conducting salt (right). Measurements were done at sweep rates of 20, 50 and 100 mV s−1. The half‐wave potential was found to be independent of the sweep rate.
Comparison of isomer shift and quadrupole splitting with Fe−C/C−O bond lengths of homoleptic, mononuclear iron carbonyls.
|
|
[Fe(CO)4]2− |
Fe(CO)5 |
[Fe(CO)5].+ |
[Fe(CO)6]2+ |
|---|---|---|---|---|
|
|
−0.16(1) |
−0.08(1) |
0.17(1) |
−0.001(6)[c] |
|
|
0.19(1) |
2.55(1) |
0.53(1) |
– |
|
avg. |
1.747(4)[a] |
1.815(5)[b] |
1.882(5) |
1.911(5)[d] |
|
avg. |
1.175(5)[a] |
1.142(9)[b] |
1.124(6) |
1.104(5)[d] |
[a] Ref. [56]. [b] Ref. [52]. [c] Ref. [10]. [d] Ref. [57].