Literature DB >> 26396838

Crystal structure of a mononuclear Ru(II) complex with a back-to-back terpyridine ligand: [RuCl(bpy)(tpy-tpy)](.).

Francisca N Rein1, Weizhong Chen1, Brian L Scott1, Reginaldo C Rocha1.   

Abstract

We report the structural characterization of [6',6''-bis-(pyridin-2-yl)-2,2':4',4'':n class="Chemical">2'',2'''-quaterpyridine](2,2'-bi-pyridine)-chlorido-ruthenium(II) hexa-fluorido-phosphate, [RuCl(C10H8N2)(C30H20N6)]PF6, which contains the bidentate ligand 2,2'-bi-pyridine (bpy) and the tridendate ligand 6',6''-bis-(pyridin-2-yl)-2,2':4',4'':2'',2'''-quaterpyridine (tpy-tpy). The [RuCl(bpy)(tpy-tpy)](+) monocation has a distorted octa-hedral geometry at the central Ru(II) ion due to the restricted bite angle [159.32 (16)°] of the tridendate ligand. The Ru-bound tpy and bpy moieties are nearly planar and essentially perpendicular to each other with a dihedral angle of 89.78 (11)° between the least-squares planes. The lengths of the two Ru-N bonds for bpy are 2.028 (4) and 2.075 (4) Å, with the shorter bond being opposite to Ru-Cl. For tpy-tpy, the mean Ru-N distance involving the outer N atoms trans to each other is 2.053 (8) Å, whereas the length of the much shorter bond involving the central N atom is 1.936 (4) Å. The Ru-Cl distance is 2.3982 (16) Å. The free uncoordinated moiety of tpy-tpy adopts a trans,trans conformation about the inter-annular C-C bonds, with adjacent pyridyl rings being only approximately coplanar. The crystal packing shows significant π-π stacking inter-actions based on tpy-tpy. The crystal structure reported here is the first for a tpy-tpy complex of ruthenium.

Entities:  

Keywords:  crystal structure; ruthenium catalysts; terpyridine; π–π stacking

Year:  2015        PMID: 26396838      PMCID: PMC4555393          DOI: 10.1107/S2056989015014632

Source DB:  PubMed          Journal:  Acta Crystallogr E Crystallogr Commun


Chemical context

Aqueous homogeneous photocatalysis by supra­molecular assemblies is a powerful concept in the development of sunlight-driven catalytic schemes for renewable energy applications (Herrero et al., 2011 ▸; Li et al., 2012 ▸; Raynal et al., 2014 ▸). In our recent efforts in this area, we have introduced alcohol-oxidation photocatalysts based on dinuclear n class="Chemical">Ru complexes (Chen et al., 2009 ▸, 2011 ▸). One of these systems is the chromophore-catalyst dyad [(tpy)Ru(tpytpy)Ru(bpy)(H2O)]4+, in which the well-defined photosensitizer {(tpy)Ru(tpy)} and catalyst {(tpy)Ru(bpy)(H2O)} moieties are linked by the single covalent bond between the back-to-back terpyridines (tpytpy). In this and other related photocatalysts containing the {(tpy)Ru(bpy)(L)} moiety (L = H2O or Cl−), the aqua species is typically formed by easy ligand substitution from its chlorido precursor in water (Chen et al., 2009 ▸; Davidson et al., 2015 ▸; Jakubikova et al., 2009 ▸; Li et al., 2015 ▸). Therefore, the mononuclear chlorido complex 1 reported here was initially prepared and isolated as an inter­mediate in the synthesis of the dinuclear precatalyst [(tpy)Ru(tpytpy)Ru(bpy)(Cl)]3+ (Chen et al., 2009 ▸). In addition to catalysis, the bridging tpytpy ligand finds relevance to the construction of donor–acceptor complexes with applications in charge/energy transfer and mol­ecular (opto)electronics (Wild et al., 2011 ▸). Surprisingly, however, the crystal structure reported here is the first for an Ru complex.

Structural commentary

The hexa­fluorido­phosphate salt of the monocationic complex (1·PF6) crystallizes in the triclinic (P ) space group. The structure of 1 is shown in Figs. 1 ▸ and 2 ▸, and selected data are summarized in Table 1 ▸. The complex has a distorted octa­hedral geometry at the metal due to the restricted bite angle of its meridionally coordinating tridendate ligand (a tpy moiety). The N1—Ru—N3 angle of 159.32 (16)° is very similar to those of bis-terpyridyl RuII complexes (Chen et al., 2013a ▸; Jude et al., 2013 ▸), and far from the ideal angle of 180°. The bidentate bpy ligand has a cis configuration, with the N4—Ru—N5 angle of 79.04 (16)° in agreement with those found in similar chlorido RuII-bpy complexes (Chen et al., 2011 ▸, 2013b ▸). The N4 atom of bpy is arranged trans to the chlorido ligand in a nearly linear N4—Ru—Cl fashion [172.92 (12)°]. The RuII atom and atoms N2, N4, N5, and Cl1 form an equatorial plane with a maximum deviation of 0.032 (4) Å. The Ru-bound tpy moiety and bpy are approximately planar [with maximum deviations of 0.086 (5) Å and 0.071 (5) Å, respectively] and their mean planes are essentially perpendicular to each other with a dihedral angle of 89.78 (11)° between planes. For the tridentate ligand, the mean Ru—N distance involving the outer N1 and N3 atoms trans to each other is 2.053 (8) Å, whereas the bond distance involving the central N2 is much shorter [1.936 (4) Å] as a result of the structural constraint imposed by these mer-arranged ligands (Chen et al., 2013a ▸; Jude et al., 2013 ▸). For the bidentate ligand, the Ru—N distance is 2.075 (4) Å for N5 but only 2.028 (4) Å for N4, reflecting the increased RuII→Nbpy π-backbonding inter­action at the coordinating atom trans to the π-donor Cl− ligand (Chen et al., 2013b ▸). The Ru—Cl distance of 2.3982 (16) Å is nearly the same as those observed previously (Chen et al., 2013b ▸; Jude et al., 2009 ▸). As expected, the free (uncoordinated) ‘half’ of tpytpy adopts a trans,trans conformation about the inter­annular C—C bonds (Constable et al., 1993 ▸). Unlike the coordinating half of tpytpy, the rings of the free tpy moiety are only approximately coplanar, with angles of 20.9 (3)° and 13.3 (3)° between adjacent rings.
Figure 1

Single-crystal structure of 1·PF6. Displacement ellipsoids are drawn at the 50% probability level. H atoms are omitted for clarity, except for H25.

Figure 2

Two views of a 2×2×2 crystal packing diagram of 1·PF6. Displacement ellipsoids are drawn at the 50% probability level. H atoms are omitted for clarity.

Table 1

Selected geometric parameters (, )

Ru1N21.936(4)Ru1N52.075(4)
Ru1N42.028(4)Ru1Cl12.3982(16)
Ru1N32.047(4)C8C331.467(7)
Ru1N12.059(4)Cl1H252.70
    
N2Ru1N496.32(17)N3Ru1N597.77(16)
N2Ru1N379.86(16)N1Ru1N5102.89(16)
N4Ru1N392.26(16)N2Ru1Cl190.73(12)
N2Ru1N179.48(16)N4Ru1Cl1172.92(12)
N4Ru1N190.79(15)N3Ru1Cl189.60(12)
N3Ru1N1159.32(16)N1Ru1Cl189.87(12)
N2Ru1N5174.75(17)N5Ru1Cl193.94(12)
N4Ru1N579.04(16)  

Supra­molecular features

The intra­molecular Cl⋯H contact of 2.70 Å involving the hydrogen of the nearest C atom at n class="Chemical">bpy (H25) is similar to that observed earlier for complexes containing the {RuCl(bpy)} moiety (Chen et al., 2011 ▸, 2013b ▸; Jude et al., 2009 ▸). Although multiple inter­molecular and intra­molecular N⋯H distances that are shorter than the sum of van der Waals radii can be identified, the proximity appears to be mostly a consequence of geometry rather than chemically significant contacts. More relevant in the crystal packing of 1·PF6 (Fig. 2 ▸) is the inter­molecular face-to-face π–π stacking between some of the pyridyl rings from tpytpy, for which the centroid–centroid distances (Cg⋯Cg) and plane–plane dihedral angles (α) are respectively: 3.723 (3) Å and 2.8 (2)° for (N3,C11,C12,C13,C14,C15)⋯(N1,C1,C2,C3,C4,C5) [sym­metry operation: −1 + x, y, z]; 3.812 (4) Å and 3.2 (2)° for (N3,C11,C12,C13,C14,C15)⋯(N2,C6,C7,C8,C9,C10) [sym­metry operation: 1–x, 1–y, 1–z]; 3.826 (4) Å and 5.6 (3)° for (N8,C36,C37,C38,C39,C40)⋯(N1,C1,C2,C3,C4,C5) [sym­metry operation: –x, –y, 1–z]; and 3.630 (4) Å and 15.5 (3)° for (N8,C36,C37,C38,C39,C40)⋯(N6,C26,C27,C28,C29,C30) [sym­metry operation: 1 + x, y, z]. In all these π–π stacking inter­actions, the slip angles from the parallel displacement (β, γ) are smaller than 30°.

Database survey

A search in the Cambridge Structural Database (Version 5.36; Groom & Allen, 2014 ▸) listed 50 hits for the n class="Chemical">tpy–tpy substructure; i.e. 6′,6′′-bis­(pyridin-2-yl)-2,2′:4′,4′′:2′′,2′′′-quaterpyridine. Other than one structure for the metal-free ligand itself (Constable et al., 1993 ▸), one for an ytterbocene complex (Carlson et al., 2006 ▸), and a few for MnII and ZnII complexes (Koo et al., 2003 ▸), all other structures are for Cu (mostly divalent) complexes and have been reported by Zubieta and colleagues (e.g. Koo et al., 2003 ▸; Ouellette et al., 2005 ▸; Jones et al., 2013 ▸). The structure reported herein is thus the first for a tpytpy complex with a second-row transition metal ion.

Synthesis and crystallization

Compound 1·PF6 was prepared by slow dropwise addition of a n class="Chemical">DMF solution of cis-Ru(bpy)(DMSO)2Cl2 into a solution of the tpytpy ligand (also in DMF) at reflux. The reaction solution was refluxed for another 2.5 h and then cooled down to room temperature. After evaporation of the solvent on a rotavap, water was added to dissolve the solid and excess NH4PF6 was added to form the precipitate, which was filtered off and dried under vacuum. Further purification was performed by column chromatography using alumina and a mixture of aceto­nitrile/toluene (1:2) as the eluant. The product was collected from the first band. The solvent was evaporated and the dark-red solid was collected and dried under vacuum (yield: 30%). Analysis calculated for C40H28N8F6PClRu: C, 53.25; H, 3.13; N, 12.42. Found: C, 52.71; H, 3.12; N, 11.86. Single crystals for X-ray structural analysis were grown by slow diffusion of diethyl ether into aceto­nitrile solutions of the complexes in long thin tubes.

Other Characterization

The identity of the complex [Ru(Cl)(n class="Chemical">bpy)(tpytpy)]+ was also characterized in MeCN solutions by other techniques. Mass spectra (ESI–MS: m/z 757) are in agreement with the formulation for the cation, i.e. [1(-PF6)]+ (calculated for C40H28N8ClRu, m/z 757.1). 1H-NMR (CD3CN, 400 MHz): δ 10.27–10.26 (d, 1H, aromatic), 9.07 (s, 2H, aromatic), 8.89 (s, 2H, aromatic), 8.73–6.95 (m, 23H, aromatic). Electrochemical measurements by cyclic voltammetry gave a redox potential of 0.83 V vs SCE for the reversible RuII/RuIII couple. This potential is anodically shifted by only 20 mV relative to the [Ru(Cl)(bpy)(tpy)]+ complex (0.81 V vs SCE; Chen et al., 2009 ▸), which is consistent with the slightly more electron-withdrawing nature of tpytpy compared to tpy.

Refinement

Crystal data, data collection and structure refinement details are summarized in Table 2 ▸. All n class="Chemical">carbon-bound hydrogen-atom positions were idealized and set to ride on the atom they were attached to, with C—H = 0.93 Å (aromatic) and U iso(H) = 1.2U eq(C). Each atom in the anion was modeled in two positions, with site occupancies tied to 1.0. A total of 48 temperature-factor restraints were used to force convergence. The SQUEEZE routine in PLATON (van der Sluis & Spek, 1990 ▸; Spek, 2015 ▸) was used to treat disordered solvent mol­ecules. The given chemical formula and other crystal data do not take into account the solvent. The final refinement included anisotropic temperature factors on all non-hydrogen atoms.
Table 2

Experimental details

Crystal data
Chemical formula[RuCl(C10H8N2)(C30H20N6)]PF6
M r 902.19
Crystal system, space groupTriclinic, P
Temperature (K)120
a, b, c ()8.678(4), 13.743(7), 18.999(10)
, , ()94.913(7), 90.583(7), 91.316(7)
V (3)2257(2)
Z 2
Radiation typeMo K
(mm1)0.50
Crystal size (mm)0.20 0.12 0.08
 
Data collection
DiffractometerBruker D8 with APEXII CCD
Absorption correctionMulti-scan (SADABS; Bruker, 2007)
T min, T max 0.703, 0.961
No. of measured, independent and observed [I > 2(I)] reflections22054, 8243, 4937
R int 0.109
(sin /)max (1)0.604
 
Refinement
R[F 2 > 2(F 2)], wR(F 2), S 0.062, 0.136, 0.91
No. of reflections8243
No. of parameters578
No. of restraints48
H-atom treatmentH-atom parameters constrained
max, min (e 3)0.74, 0.74

Computer programs: APEX2 and SAINT-Plus (Bruker, 2007 ▸), SHELXS97 and SHELXL97 (Sheldrick, 2008 ▸), Mercury (Macrae et al., 2008 ▸) and publCIF (Westrip, 2010 ▸).

Crystal structure: contains datablock(s) I. DOI: 10.1107/S2056989015014632/pk2553sup1.cif Structure factors: contains datablock(s) I. DOI: 10.1107/S2056989015014632/pk2553Isup2.hkl CCDC reference: 1416756 Additional supporting information: crystallographic information; 3D view; checkCIF report
[RuCl(C10H8N2)(C30H20N6)]PF6Z = 2
Mr = 902.19F(000) = 908
Triclinic, P1Dx = 1.328 Mg m3
Hall symbol: -P 1Mo Kα radiation, λ = 0.71073 Å
a = 8.678 (4) ÅCell parameters from 1124 reflections
b = 13.743 (7) Åθ = 2.4–19.3°
c = 18.999 (10) ŵ = 0.50 mm1
α = 94.913 (7)°T = 120 K
β = 90.583 (7)°Block, red
γ = 91.316 (7)°0.20 × 0.12 × 0.08 mm
V = 2257 (2) Å3
Bruker D8 with APEXII CCD diffractometer8243 independent reflections
Radiation source: fine-focus sealed tube4937 reflections with I > 2σ(I)
Graphite monochromatorRint = 0.109
ω scansθmax = 25.4°, θmin = 1.9°
Absorption correction: multi-scan (SADABS; Bruker, 2007)h = −10→10
Tmin = 0.703, Tmax = 0.961k = −16→16
22054 measured reflectionsl = −22→22
Refinement on F2Primary atom site location: structure-invariant direct methods
Least-squares matrix: fullSecondary atom site location: difference Fourier map
R[F2 > 2σ(F2)] = 0.062Hydrogen site location: inferred from neighbouring sites
wR(F2) = 0.136H-atom parameters constrained
S = 0.91w = 1/[σ2(Fo2) + (0.0419P)2] where P = (Fo2 + 2Fc2)/3
8243 reflections(Δ/σ)max < 0.001
578 parametersΔρmax = 0.74 e Å3
48 restraintsΔρmin = −0.74 e Å3
Geometry. All e.s.d.'s (except the e.s.d. in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell e.s.d.'s are taken into account individually in the estimation of e.s.d.'s in distances, angles and torsion angles; correlations between e.s.d.'s in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell e.s.d.'s is used for estimating e.s.d.'s involving l.s. planes.
Refinement. Refinement of F2 against ALL reflections. The weighted R-factor wR and goodness of fit S are based on F2, conventional R-factors R are based on F, with F set to zero for negative F2. The threshold expression of F2 > σ(F2) is used only for calculating R-factors(gt) etc. and is not relevant to the choice of reflections for refinement. R-factors based on F2 are statistically about twice as large as those based on F, and R-factors based on ALL data will be even larger.
xyzUiso*/UeqOcc. (<1)
Ru10.31152 (5)0.40649 (3)0.31845 (2)0.01950 (14)
Cl10.20756 (14)0.55446 (9)0.37256 (6)0.0221 (3)
P10.0848 (11)0.7198 (7)0.9425 (5)0.041 (2)0.373 (15)
F10.185 (2)0.6716 (13)0.8753 (9)0.052 (5)0.373 (15)
F2−0.011 (2)0.6165 (12)0.9447 (11)0.083 (5)0.373 (15)
F3−0.009 (2)0.7718 (12)1.0054 (9)0.071 (5)0.373 (15)
F40.187 (3)0.8171 (17)0.9359 (14)0.095 (9)0.373 (15)
F5−0.0441 (13)0.7540 (13)0.8891 (5)0.049 (4)0.373 (15)
F60.214 (2)0.6793 (16)0.9933 (11)0.084 (7)0.373 (15)
P1'0.1274 (7)0.6894 (5)0.9376 (3)0.0488 (16)0.627 (15)
F1'0.1952 (13)0.6232 (9)0.8730 (5)0.075 (3)0.627 (15)
F2'0.0703 (14)0.5948 (6)0.9729 (4)0.079 (4)0.627 (15)
F3'0.0586 (12)0.7545 (7)1.0043 (5)0.068 (3)0.627 (15)
F4'0.1802 (16)0.7844 (9)0.9033 (7)0.068 (4)0.627 (15)
F5'−0.0369 (10)0.6894 (11)0.8975 (5)0.080 (3)0.627 (15)
F6'0.2860 (13)0.6884 (6)0.9794 (5)0.066 (3)0.627 (15)
N10.0981 (4)0.3388 (3)0.3224 (2)0.0177 (10)
N20.3256 (4)0.3534 (3)0.4094 (2)0.0168 (10)
N30.5281 (5)0.4555 (3)0.3497 (2)0.0207 (10)
N40.3947 (4)0.2883 (3)0.2611 (2)0.0204 (10)
N50.3130 (5)0.4552 (3)0.2180 (2)0.0209 (10)
N60.7959 (5)0.2076 (3)0.7126 (2)0.0213 (10)
N70.4133 (5)0.1081 (3)0.7186 (2)0.0190 (10)
N80.0356 (5)0.0152 (3)0.6655 (2)0.0229 (10)
C1−0.0175 (5)0.3340 (4)0.2744 (3)0.0223 (13)
H1−0.00290.36440.23300.027*
C2−0.1553 (6)0.2869 (4)0.2835 (3)0.0230 (13)
H2−0.23160.28470.24860.028*
C3−0.1805 (6)0.2418 (4)0.3463 (3)0.0241 (13)
H3−0.27330.20910.35350.029*
C4−0.0646 (5)0.2471 (4)0.3969 (3)0.0218 (12)
H4−0.07860.21890.43930.026*
C50.0717 (6)0.2945 (3)0.3839 (3)0.0207 (12)
C60.2055 (6)0.3018 (4)0.4340 (3)0.0214 (12)
C70.2167 (6)0.2579 (3)0.4963 (3)0.0189 (12)
H70.13320.22220.51180.023*
C80.3525 (6)0.2668 (4)0.5362 (3)0.0192 (12)
C90.4728 (5)0.3232 (3)0.5111 (3)0.0168 (11)
H90.56430.33220.53690.020*
C100.4565 (5)0.3660 (3)0.4476 (3)0.0173 (12)
C110.5715 (5)0.4265 (4)0.4147 (2)0.0172 (12)
C120.7154 (5)0.4531 (4)0.4451 (3)0.0194 (12)
H120.74340.43270.48880.023*
C130.8163 (6)0.5107 (4)0.4085 (3)0.0243 (13)
H130.91240.52950.42790.029*
C140.7733 (5)0.5394 (4)0.3439 (3)0.0204 (12)
H140.84030.57670.31860.024*
C150.6282 (6)0.5120 (4)0.3169 (3)0.0245 (13)
H150.59860.53390.27390.029*
C160.4309 (5)0.2020 (4)0.2859 (3)0.0195 (12)
H160.41970.19550.33390.023*
C170.4820 (6)0.1254 (4)0.2448 (3)0.0250 (13)
H170.50460.06740.26420.030*
C180.5005 (6)0.1337 (4)0.1735 (3)0.0284 (14)
H180.53400.08090.14420.034*
C190.4695 (6)0.2198 (4)0.1462 (3)0.0294 (14)
H190.48490.22690.09860.035*
C200.4152 (6)0.2964 (4)0.1900 (3)0.0254 (13)
C210.3745 (6)0.3931 (4)0.1671 (3)0.0281 (14)
C220.3947 (7)0.4183 (4)0.0986 (3)0.0394 (16)
H220.43680.37440.06450.047*
C230.3512 (7)0.5100 (4)0.0819 (3)0.0448 (17)
H230.36770.52960.03690.054*
C240.2835 (7)0.5715 (4)0.1324 (3)0.0372 (16)
H240.24820.63190.12160.045*
C250.2687 (6)0.5418 (4)0.1998 (3)0.0249 (13)
H250.22540.58470.23430.030*
C260.9244 (6)0.2161 (4)0.7534 (3)0.0272 (14)
H261.01480.23910.73420.033*
C270.9280 (6)0.1921 (4)0.8225 (3)0.0272 (13)
H271.01880.19920.84900.033*
C280.7979 (7)0.1582 (4)0.8509 (3)0.0387 (16)
H280.79840.14110.89720.046*
C290.6637 (6)0.1490 (4)0.8110 (3)0.0292 (14)
H290.57270.12680.83030.035*
C300.6661 (6)0.1732 (3)0.7422 (3)0.0192 (12)
C310.5239 (6)0.1666 (4)0.6984 (3)0.0203 (12)
C320.5088 (5)0.2208 (4)0.6396 (3)0.0188 (12)
H320.59060.26010.62660.023*
C330.3710 (6)0.2161 (4)0.6005 (3)0.0215 (12)
C340.2524 (6)0.1552 (4)0.6246 (3)0.0233 (13)
H340.15670.15060.60190.028*
C350.2801 (6)0.1025 (4)0.6822 (3)0.0204 (12)
C360.1559 (6)0.0370 (4)0.7088 (3)0.0213 (12)
C370.1701 (6)0.0028 (4)0.7753 (3)0.0252 (13)
H370.25610.01970.80370.030*
C380.0555 (6)−0.0559 (4)0.7981 (3)0.0306 (14)
H380.0632−0.08070.84200.037*
C39−0.0724 (6)−0.0781 (4)0.7552 (3)0.0294 (14)
H39−0.1529−0.11740.76960.035*
C40−0.0762 (6)−0.0404 (4)0.6909 (3)0.0271 (13)
H40−0.1632−0.05450.66250.032*
U11U22U33U12U13U23
Ru10.0195 (3)0.0187 (3)0.0207 (3)−0.00196 (18)0.00070 (18)0.00520 (19)
Cl10.0220 (7)0.0213 (8)0.0231 (7)−0.0007 (6)0.0025 (6)0.0030 (6)
P10.049 (3)0.037 (3)0.035 (3)−0.002 (2)−0.002 (2)0.002 (2)
F10.059 (6)0.057 (7)0.041 (6)0.000 (5)0.008 (4)0.008 (5)
F20.086 (7)0.075 (7)0.089 (7)−0.019 (4)0.010 (5)0.009 (5)
F30.075 (7)0.073 (7)0.064 (6)0.012 (5)−0.002 (5)0.001 (4)
F40.100 (12)0.054 (12)0.13 (2)−0.049 (10)−0.041 (15)0.020 (12)
F50.053 (7)0.066 (11)0.025 (6)−0.028 (7)−0.011 (5)−0.005 (6)
F60.094 (8)0.088 (8)0.072 (8)0.008 (5)−0.020 (5)0.019 (5)
P1'0.052 (2)0.059 (3)0.037 (2)−0.0087 (19)−0.0020 (18)0.0111 (19)
F1'0.100 (7)0.075 (8)0.050 (5)−0.006 (6)0.003 (4)0.005 (6)
F2'0.108 (8)0.071 (6)0.057 (5)−0.063 (5)0.000 (5)0.020 (4)
F3'0.071 (5)0.085 (5)0.044 (4)−0.012 (4)0.001 (4)−0.012 (3)
F4'0.060 (6)0.070 (10)0.082 (8)−0.013 (6)−0.005 (6)0.064 (7)
F5'0.067 (4)0.103 (5)0.068 (4)−0.006 (4)−0.012 (3)−0.004 (4)
F6'0.078 (7)0.065 (5)0.057 (5)−0.027 (5)−0.041 (5)0.035 (4)
N10.014 (2)0.019 (2)0.021 (2)−0.0010 (19)−0.0042 (19)0.002 (2)
N20.012 (2)0.014 (2)0.025 (2)−0.0066 (18)0.0028 (19)0.0009 (19)
N30.021 (2)0.011 (2)0.031 (3)0.0019 (19)0.002 (2)0.004 (2)
N40.014 (2)0.028 (3)0.019 (2)−0.013 (2)0.0024 (19)0.003 (2)
N50.027 (3)0.009 (2)0.027 (3)0.000 (2)−0.003 (2)0.000 (2)
N60.018 (2)0.026 (3)0.021 (2)0.000 (2)−0.0044 (19)0.004 (2)
N70.019 (2)0.018 (2)0.020 (2)0.0001 (19)0.0030 (19)0.0028 (19)
N80.021 (2)0.020 (3)0.027 (3)−0.005 (2)−0.005 (2)0.003 (2)
C10.017 (3)0.025 (3)0.026 (3)0.002 (2)0.004 (2)0.009 (3)
C20.022 (3)0.022 (3)0.025 (3)0.001 (2)−0.004 (2)0.003 (3)
C30.010 (3)0.025 (3)0.038 (3)−0.003 (2)0.003 (2)0.009 (3)
C40.019 (3)0.022 (3)0.025 (3)−0.001 (2)0.002 (2)0.005 (2)
C50.023 (3)0.005 (3)0.036 (3)0.002 (2)−0.003 (3)0.007 (2)
C60.024 (3)0.019 (3)0.021 (3)−0.001 (2)−0.001 (2)0.003 (2)
C70.018 (3)0.015 (3)0.024 (3)−0.004 (2)0.001 (2)0.004 (2)
C80.022 (3)0.017 (3)0.018 (3)−0.003 (2)0.001 (2)−0.001 (2)
C90.018 (3)0.010 (3)0.023 (3)0.001 (2)−0.003 (2)0.005 (2)
C100.012 (3)0.015 (3)0.025 (3)−0.002 (2)0.002 (2)0.004 (2)
C110.017 (3)0.018 (3)0.018 (3)−0.004 (2)0.002 (2)0.007 (2)
C120.021 (3)0.021 (3)0.017 (3)−0.001 (2)0.002 (2)0.005 (2)
C130.014 (3)0.027 (3)0.031 (3)−0.002 (2)0.002 (2)−0.003 (3)
C140.013 (3)0.027 (3)0.021 (3)−0.006 (2)0.006 (2)0.007 (2)
C150.027 (3)0.020 (3)0.027 (3)0.007 (3)0.009 (3)0.008 (3)
C160.014 (3)0.017 (3)0.028 (3)−0.004 (2)0.001 (2)0.008 (3)
C170.030 (3)0.020 (3)0.027 (3)−0.001 (3)−0.002 (3)0.010 (3)
C180.041 (4)0.017 (3)0.027 (3)0.004 (3)0.001 (3)0.004 (3)
C190.042 (4)0.024 (3)0.022 (3)0.007 (3)0.000 (3)0.000 (3)
C200.030 (3)0.023 (3)0.025 (3)0.009 (3)0.000 (3)0.008 (3)
C210.033 (3)0.021 (3)0.030 (3)−0.003 (3)−0.005 (3)0.005 (3)
C220.071 (5)0.026 (4)0.022 (3)0.011 (3)−0.001 (3)0.005 (3)
C230.077 (5)0.031 (4)0.028 (4)0.011 (4)0.005 (3)0.013 (3)
C240.062 (4)0.027 (4)0.025 (3)0.009 (3)−0.001 (3)0.009 (3)
C250.037 (3)0.018 (3)0.020 (3)0.004 (3)0.006 (3)0.002 (2)
C260.015 (3)0.029 (3)0.038 (4)0.004 (3)0.000 (3)0.001 (3)
C270.026 (3)0.017 (3)0.039 (4)0.002 (3)−0.015 (3)0.008 (3)
C280.051 (4)0.039 (4)0.027 (3)−0.013 (3)−0.013 (3)0.012 (3)
C290.035 (3)0.032 (4)0.022 (3)−0.014 (3)−0.005 (3)0.010 (3)
C300.023 (3)0.011 (3)0.025 (3)0.003 (2)−0.004 (2)0.007 (2)
C310.021 (3)0.017 (3)0.023 (3)0.001 (2)0.004 (2)0.004 (2)
C320.011 (3)0.022 (3)0.024 (3)0.000 (2)0.003 (2)0.011 (2)
C330.016 (3)0.022 (3)0.027 (3)−0.003 (2)−0.001 (2)0.004 (2)
C340.022 (3)0.026 (3)0.022 (3)0.001 (2)−0.002 (2)0.000 (3)
C350.024 (3)0.015 (3)0.023 (3)0.005 (2)0.007 (2)0.004 (2)
C360.024 (3)0.015 (3)0.026 (3)0.008 (2)0.000 (2)0.006 (2)
C370.016 (3)0.030 (3)0.032 (3)−0.003 (2)−0.001 (2)0.014 (3)
C380.030 (3)0.030 (4)0.034 (3)−0.005 (3)0.012 (3)0.011 (3)
C390.019 (3)0.028 (3)0.043 (4)−0.006 (3)0.004 (3)0.008 (3)
C400.023 (3)0.021 (3)0.037 (4)−0.006 (3)0.006 (3)0.006 (3)
Ru1—N21.936 (4)C4—C51.372 (6)
Ru1—N42.028 (4)C5—C61.490 (7)
Ru1—N32.047 (4)C6—C71.378 (6)
Ru1—N12.059 (4)C7—C81.391 (6)
Ru1—N52.075 (4)C8—C91.399 (6)
Ru1—Cl12.3982 (16)C8—C331.467 (7)
P1—F31.585 (17)C9—C101.393 (6)
P1—F41.60 (2)C10—C111.464 (6)
P1—F51.608 (14)C11—C121.398 (6)
P1—F61.61 (2)C12—C131.398 (6)
P1—F21.630 (17)C13—C141.372 (7)
P1—F11.652 (19)C14—C151.386 (7)
P1'—F4'1.569 (12)C16—C171.342 (7)
P1'—F6'1.583 (10)C17—C181.379 (7)
P1'—F2'1.585 (8)C18—C191.364 (7)
P1'—F1'1.590 (11)C19—C201.379 (7)
P1'—F5'1.609 (10)C20—C211.484 (7)
P1'—F3'1.615 (10)C21—C221.386 (7)
N1—C11.345 (6)C22—C231.385 (7)
N1—C51.381 (6)C23—C241.369 (8)
N2—C101.341 (6)C24—C251.384 (7)
N2—C61.357 (6)C26—C271.381 (7)
N3—C151.345 (6)C27—C281.347 (7)
N3—C111.381 (6)C28—C291.381 (7)
N4—C161.355 (6)C29—C301.375 (7)
N4—C201.378 (6)C30—C311.478 (7)
N5—C251.331 (6)C31—C321.401 (7)
N5—C211.357 (6)C32—C331.399 (6)
N6—C261.349 (6)C33—C341.415 (6)
N6—C301.358 (6)C34—C351.386 (7)
N7—C311.319 (6)C35—C361.507 (7)
N7—C351.337 (6)C36—C371.392 (7)
N8—C361.334 (6)C37—C381.364 (7)
N8—C401.341 (6)C38—C391.382 (7)
C1—C21.366 (6)C39—C401.368 (7)
C2—C31.408 (7)Cl1—H252.70
C3—C41.382 (7)
N2—Ru1—N496.32 (17)C1—C2—C3119.2 (5)
N2—Ru1—N379.86 (16)C4—C3—C2118.6 (5)
N4—Ru1—N392.26 (16)C5—C4—C3119.0 (5)
N2—Ru1—N179.48 (16)C4—C5—N1122.9 (5)
N4—Ru1—N190.79 (15)C4—C5—C6123.3 (5)
N3—Ru1—N1159.32 (16)N1—C5—C6113.8 (4)
N2—Ru1—N5174.75 (17)N2—C6—C7121.4 (5)
N4—Ru1—N579.04 (16)N2—C6—C5112.1 (4)
N3—Ru1—N597.77 (16)C7—C6—C5126.4 (5)
N1—Ru1—N5102.89 (16)C6—C7—C8120.3 (5)
N2—Ru1—Cl190.73 (12)C7—C8—C9117.2 (5)
N4—Ru1—Cl1172.92 (12)C7—C8—C33121.5 (4)
N3—Ru1—Cl189.60 (12)C9—C8—C33121.2 (4)
N1—Ru1—Cl189.87 (12)C10—C9—C8120.5 (4)
N5—Ru1—Cl193.94 (12)N2—C10—C9120.7 (4)
F3—P1—F491.2 (13)N2—C10—C11112.6 (4)
F3—P1—F588.1 (8)C9—C10—C11126.8 (4)
F4—P1—F591.9 (11)N3—C11—C12121.5 (4)
F3—P1—F694.5 (10)N3—C11—C10114.7 (4)
F4—P1—F690.2 (13)C12—C11—C10123.7 (4)
F5—P1—F6176.6 (10)C11—C12—C13118.7 (5)
F3—P1—F293.3 (9)C14—C13—C12119.8 (5)
F4—P1—F2175.5 (13)C13—C14—C15118.9 (5)
F5—P1—F288.8 (8)N3—C15—C14123.4 (5)
F6—P1—F288.8 (10)C17—C16—N4123.5 (5)
F3—P1—F1176.8 (10)C16—C17—C18119.2 (5)
F4—P1—F185.9 (11)C19—C18—C17119.6 (5)
F5—P1—F190.6 (9)C18—C19—C20119.4 (5)
F6—P1—F187.0 (10)N4—C20—C19121.3 (5)
F2—P1—F189.6 (9)N4—C20—C21113.8 (5)
F4'—P1'—F6'90.7 (6)C19—C20—C21124.9 (5)
F4'—P1'—F2'178.6 (7)N5—C21—C22122.1 (5)
F6'—P1'—F2'90.2 (5)N5—C21—C20114.9 (5)
F4'—P1'—F1'90.7 (6)C22—C21—C20123.0 (5)
F6'—P1'—F1'91.1 (6)C23—C22—C21118.8 (5)
F2'—P1'—F1'90.4 (5)C24—C23—C22119.3 (5)
F4'—P1'—F5'90.8 (6)C23—C24—C25118.6 (5)
F6'—P1'—F5'178.0 (6)N5—C25—C24123.5 (5)
F2'—P1'—F5'88.4 (5)N6—C26—C27123.1 (5)
F1'—P1'—F5'90.2 (6)C28—C27—C26119.0 (5)
F4'—P1'—F3'90.5 (6)C27—C28—C29119.7 (5)
F6'—P1'—F3'88.4 (6)C30—C29—C28119.2 (5)
F2'—P1'—F3'88.3 (5)N6—C30—C29122.1 (5)
F1'—P1'—F3'178.7 (6)N6—C30—C31117.2 (4)
F5'—P1'—F3'90.3 (5)C29—C30—C31120.7 (5)
C1—N1—C5116.9 (4)N7—C31—C32122.7 (5)
C1—N1—Ru1128.9 (3)N7—C31—C30116.0 (4)
C5—N1—Ru1114.2 (3)C32—C31—C30121.2 (4)
C10—N2—C6119.9 (4)C33—C32—C31120.2 (5)
C10—N2—Ru1119.7 (3)C32—C33—C34116.0 (5)
C6—N2—Ru1120.5 (3)C32—C33—C8122.3 (5)
C15—N3—C11117.7 (4)C34—C33—C8121.6 (5)
C15—N3—Ru1129.3 (4)C35—C34—C33119.4 (5)
C11—N3—Ru1113.0 (3)N7—C35—C34123.3 (5)
C16—N4—C20116.9 (4)N7—C35—C36116.2 (4)
C16—N4—Ru1126.3 (3)C34—C35—C36120.5 (5)
C20—N4—Ru1116.8 (3)N8—C36—C37123.5 (5)
C25—N5—C21117.6 (4)N8—C36—C35116.5 (4)
C25—N5—Ru1127.0 (3)C37—C36—C35120.0 (5)
C21—N5—Ru1115.3 (3)C38—C37—C36118.7 (5)
C26—N6—C30116.9 (4)C37—C38—C39119.3 (5)
C31—N7—C35118.3 (4)C40—C39—C38117.6 (5)
C36—N8—C40115.7 (5)N8—C40—C39125.1 (5)
N1—C1—C2123.3 (5)
  16 in total

1.  Towards a solar fuel device: light-driven water oxidation catalyzed by a supramolecular assembly.

Authors:  Fei Li; Yi Jiang; Biaobiao Zhang; Fang Huang; Yan Gao; Licheng Sun
Journal:  Angew Chem Int Ed Engl       Date:  2012-01-26       Impact factor: 15.336

2.  Advances in the field of π-conjugated 2,2':6',2"-terpyridines.

Authors:  Andreas Wild; Andreas Winter; Florian Schlütter; Ulrich S Schubert
Journal:  Chem Soc Rev       Date:  2010-12-14       Impact factor: 54.564

3.  Supramolecular catalysis. Part 1: non-covalent interactions as a tool for building and modifying homogeneous catalysts.

Authors:  Matthieu Raynal; Pablo Ballester; Anton Vidal-Ferran; Piet W N M van Leeuwen
Journal:  Chem Soc Rev       Date:  2013-12-20       Impact factor: 54.564

4.  Homogeneous photocatalytic oxidation of alcohols by a chromophore-catalyst dyad of ruthenium complexes.

Authors:  Weizhong Chen; Francisca N Rein; Reginaldo C Rocha
Journal:  Angew Chem Int Ed Engl       Date:  2009       Impact factor: 15.336

5.  Alkyne substituted mononuclear photocatalysts based on [RuCl(bpy)(tpy)]⁺.

Authors:  Ross J Davidson; Lucy E Wilson; Andrew R Duckworth; Dmitry S Yufit; Andrew Beeby; Paul J Low
Journal:  Dalton Trans       Date:  2015-07-07       Impact factor: 4.390

6.  Ytterbocene charge-transfer molecular wire complexes.

Authors:  Christin N Carlson; Christopher J Kuehl; Ryan E Da Re; Jacqueline M Veauthier; Eric J Schelter; Ashley E Milligan; Brian L Scott; Eric D Bauer; J D Thompson; David E Morris; Kevin D John
Journal:  J Am Chem Soc       Date:  2006-06-07       Impact factor: 15.419

7.  Catalytic photooxidation of alcohols by an unsymmetrical tetra(pyridyl)pyrazine-bridged dinuclear Ru complex.

Authors:  Weizhong Chen; Francisca N Rein; Brian L Scott; Reginaldo C Rocha
Journal:  Chemistry       Date:  2011-03-30       Impact factor: 5.236

8.  Electronic structure and spectroscopy of [Ru(tpy)(2)](2+), [Ru(tpy)(bpy)(H(2)O)](2+), and [Ru(tpy)(bpy)(Cl)](+).

Authors:  Elena Jakubikova; Weizhong Chen; Dana M Dattelbaum; Francisca N Rein; Reginaldo C Rocha; Richard L Martin; Enrique R Batista
Journal:  Inorg Chem       Date:  2009-11-16       Impact factor: 5.165

9.  (4'-Ethynyl-2,2':6',2''-terpyridine)(2,2':6',2''-terpyridine)-ruthenium(II) bis-(hexa-fluoridophosphate) acetonitrile disolvate.

Authors:  Weizhong Chen; Francisca N Rein; Brian L Scott; Reginaldo C Rocha
Journal:  Acta Crystallogr Sect E Struct Rep Online       Date:  2013-01-09

10.  μ-2,3,5,6-Tetra-kis(pyridin-2-yl)pyrazine-bis-[(2,2':6',2''-terpyridine)-ruthenium(II)] tetra-kis-(hexa-fluoridophosphate) acetonitrile tetra-solvate.

Authors:  Hershel Jude; Brian L Scott; Reginaldo C Rocha
Journal:  Acta Crystallogr Sect E Struct Rep Online       Date:  2013-01-09
View more
  1 in total

1.  Effects of the Bidentate Ligand on the Photophysical Properties, Cellular Uptake, and (Photo)cytotoxicity of Glycoconjugates Based on the [Ru(tpy)(NN)(L)]2+ Scaffold.

Authors:  Lucien N Lameijer; Tobias G Brevé; Vincent H S van Rixel; Sven H C Askes; M A Siegler; Sylvestre Bonnet
Journal:  Chemistry       Date:  2018-01-30       Impact factor: 5.236

  1 in total

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