organic compounds\(\def\hfill{\hskip 5em}\def\hfil{\hskip 3em}\def\eqno#1{\hfil {#1}}\)

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ISSN: 2414-3146

N,N′-Bis(2,6-diiso­propyl­phen­yl)-N-hy­dr­oxy­formamidine–N,N′-bis­­(2,6-diiso­propyl­phen­yl)-N-oxidoformamidinium (1/1)

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aSchool of Agriculture and Science, Discipline of Chemistry, University of KwaZulu-Natal, Private Bag X54001, Durban, 4000, Republic of South Africa, and bMultimedia University of Kenya, PO Box 15653-00503, Nairobi, Kenya
*Correspondence e-mail: [email protected]

Edited by E. R. T. Tiekink, Universitat de les Illes Balears, Palma de Mallorca, Spain (Received 18 June 2026; accepted 5 August 2026; online 7 August 2026)

The title compound, C25H36N2O, crystallized with two independent mol­ecules in the asymmetric unit each with statistical proton disorder within the formamidine backbone, thereby indicating the coexistence of zwitterionic and neutral tautomers. The mol­ecular conformation is described by the dihedral angles between each phenyl ring plane and the formamidine backbone, which are 79.8 (3) and 76.0 (3)°, and by the dihedral angle between the two phenyl ring planes, which is 59.61 (11)°. In the crystal, O—H⋯O and N—H⋯N hydrogen bonds connect the neutral and zwitterionic mol­ecules into cyclic dimers. The methyl groups of one isopropyl residue are statistically disordered.

3D view (loading...)
[Scheme 3D1]
Chemical scheme
[Scheme 1]

Structure description

Formimidamide ligands are a distinct and versatile class of nitro­gen-based ligands notable for the range of coordination modes to metal centres (Deacon et al., 2017View full citation). Extensive research has shown that they play significant roles in catalytic processes (Edor et al., 2025View full citation) and in bioinorganic systems (Soliman et al., 2019View full citation; Bongoza et al., 2022View full citation), where their ability to stabilize reactive metal centres is crucial for facilitating catalytic transformations and mimicking enzymatic active sites. A significant subclass of these ligands includes symmetrical di­aryl­formamidine derivatives bearing N-hy­droxy­formimidamide functional groups. The N-hy­droxy­formimidamides are recognized for their significant role in coordination chemistry, attributed to the hy­droxy substitution on the nitro­gen atom, which influences both electronic characteristics and coordination modes. These mol­ecules can exist in both zwitterionic and neutral forms, impacting their reactivity and coordination properties thereby broadening their potential applications. Moreover, the presence of both tautomeric forms can cause subtle changes in the chemical environments or substituent patterns, influencing stability and inter­molecular inter­actions (Juma et al., 2025View full citation). Recognizing the crucial role of N-hy­droxy­formimidamides in coordination chemistry, our research efforts focused on the synthesis and structural elucidation of di­aryl­formamidine derivatives bearing sterically demanding substituents. As such, we herein report the crystal structure of the title compound, providing insight into its mol­ecular conformation and inter­molecular inter­actions.

The title compound is a symmetrical di­aryl­formamidine derivative bearing diisopropyl substituents. Its crystal contains two independent mol­ecules in the asymmetric-unit, Fig. 1[link]. The compound can exist in both zwitterionic and neutral forms (Juma et al., 2025View full citation), as evidenced herein by the disorder of the formamidine hydrogen atoms, each refined with 0.5 site occupancy over N2/N4 and O1/O2. The mol­ecular conformation is described by the mean dihedral angles (averaged over the two independent mol­ecules in the asymmetric unit) between each phenyl-ring plane and the formamidine backbone [–N(OH)–C(H)=N–]. The phenyl ring attached to the N-hy­droxy group exhibits a mean dihedral angle of 79.8 (3)°, while the phenyl ring bound to the amine nitro­gen shows a mean dihedral angle of 76.0 (3)°. The mean dihedral angle between the planes of the two phenyl rings is 59.61 (11)°. All other intra­molecular bond parameters are comparable with those of N1,N2-bis­(2,6- di­methyl­phen­yl)-N1-hy­droxy­formamidine N,N′-bis­(2,6- dimethyl-N-oxidoformamidinium di­chloro­methane solvate (CSD Refcode QUCMUX; Cibian et al., 2009View full citation).

[Figure 1]
Figure 1
Mol­ecular structures comprising the asymmetric unit of the title compound, shown with displacement ellipsoids at the 50% probability level. Hydrogen atoms, except those on the formamidine backbone, are omitted for clarity. The C10, C12 and the hydrogen atoms on the amine and hy­droxy groups are statistically disordered.

The mol­ecular packing of the title compounds is consolidated by O—H⋯O and N—H⋯N hydrogen-bonding inter­actions (Table 1[link]; Fig. 2[link]). These inter­actions occur between the zwitterionic and neutral mol­ecules, giving rise to hydrogen-bonded cyclic dimers.

Table 1
Hydrogen-bond geometry (Å, °)

D—H⋯A D—H H⋯A DA D—H⋯A
O1—H1⋯O2 0.82 1.76 2.577 (3) 175
N2—H2⋯N4 0.86 2.09 2.906 (3) 158
O2—H2A⋯O1 0.82 1.76 2.577 (3) 177
N4—H4A⋯N2 0.86 2.07 2.906 (3) 164
[Figure 2]
Figure 2
Illustration of one of the two O—H⋯O and N—H⋯N hydrogen-bonding patterns in the crystal of the title compound (red and blue dotted bonds, respectively).

Synthesis and crystallization

The title compound was synthesized following a literature procedure (Juma et al., 2025View full citation). The crude solid was then recrystallized from its di­chloro­methane solution to produce colourless blocks of the title compound suitable for X-ray diffraction.

Refinement

Crystallographic data and structure refinement details are summarized in Table 2[link]. The hydrogen atoms on the formamidine backbone and the disordered terminal carbon atoms of the C11-isopropyl substituent were refined as disordered over two positions of equal site occupancy. All disordered bond lengths and bond angles were restrained to be similar to each other (SADI restraints, s.d. 0.02 Å), and Uij components of the ADPs of the disordered atoms closer to each other than 2.0 Å were restrained to be similar (SIMU restraint, s.d. 0.01 Å).

Table 2
Experimental details

Crystal data
Chemical formula C25H36N2O
Mr 380.56
Crystal system, space group Triclinic, PMathematical equation
Temperature (K) 293
a, b, c (Å) 13.019 (4), 14.090 (5), 14.497 (5)
α, β, γ (°) 83.167 (7), 73.864 (8), 70.987 (8)
V3) 2413.9 (13)
Z 4
Radiation type Mo Kα
μ (mm−1) 0.06
Crystal size (mm) 0.28 × 0.22 × 0.18
 
Data collection
Diffractometer Bruker APEXII CCD
Absorption correction Multi-scan (SADABS; Krause et al., 2015View full citation)
Tmin, Tmax 0.641, 0.745
No. of measured, independent and observed [I > 2σ(I)] reflections 25947, 9358, 5940
Rint 0.037
(sin θ/λ)max−1) 0.618
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.080, 0.184, 1.14
No. of reflections 9358
No. of parameters 529
No. of restraints 2
H-atom treatment H-atom parameters constrained
Δρmax, Δρmin (e Å−3) 0.22, −0.17
Computer programs: APEX2 and SAINT (Bruker, 2009View full citation), SHELXS (Sheldrick, 2008View full citation), SHELXL2018/3 (Sheldrick, 2015View full citation) and OLEX2 (Dolomanov et al., 2009View full citation).

Structural data


Computing details top

N,N'-Bis(2,6-diisopropylphenyl)-N-hydroxyformamidine–N,N'-bis(2,6-diisopropylphenyl)-N-oxidoformamidinium (1/1) top
Crystal data top
C25H36N2OZ = 4
Mr = 380.56F(000) = 832
Triclinic, P1Dx = 1.047 Mg m3
a = 13.019 (4) ÅMo Kα radiation, λ = 0.71073 Å
b = 14.090 (5) ÅCell parameters from 8283 reflections
c = 14.497 (5) Åθ = 3.3–26.6°
α = 83.167 (7)°µ = 0.06 mm1
β = 73.864 (8)°T = 293 K
γ = 70.987 (8)°Block, colourless
V = 2413.9 (13) Å30.28 × 0.22 × 0.18 mm
Data collection top
Bruker APEXII CCD
diffractometer
5940 reflections with I > 2σ(I)
Graphite monochromatorRint = 0.037
φ and ω scansθmax = 26.1°, θmin = 1.5°
Absorption correction: multi-scan
(SADABS; Krause et al., 2015)
h = 1416
Tmin = 0.641, Tmax = 0.745k = 1716
25947 measured reflectionsl = 1715
9358 independent reflections
Refinement top
Refinement on F2Primary atom site location: structure-invariant direct methods
Least-squares matrix: fullHydrogen site location: inferred from neighbouring sites
R[F2 > 2σ(F2)] = 0.080H-atom parameters constrained
wR(F2) = 0.184 w = 1/[σ2(Fo2) + (0.0499P)2 + 0.9506P]
where P = (Fo2 + 2Fc2)/3
S = 1.14(Δ/σ)max < 0.001
9358 reflectionsΔρmax = 0.22 e Å3
529 parametersΔρmin = 0.16 e Å3
2 restraints
Special details top

Geometry. All esds (except the esd in the dihedral angle between two l.s. planes) are estimated using the full covariance matrix. The cell esds are taken into account individually in the estimation of esds in distances, angles and torsion angles; correlations between esds in cell parameters are only used when they are defined by crystal symmetry. An approximate (isotropic) treatment of cell esds is used for estimating esds involving l.s. planes.

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/UeqOcc. (<1)
O10.12858 (15)0.81337 (13)0.17059 (11)0.0580 (5)
H10.1253550.7787560.2203320.087*0.5
N10.19331 (17)0.75397 (15)0.09407 (13)0.0499 (5)
N20.35095 (16)0.70872 (15)0.15412 (14)0.0494 (5)
H20.3179940.7501450.2001000.059*0.5
C10.1393 (2)0.75386 (19)0.01951 (17)0.0522 (6)
C20.1564 (3)0.8159 (2)0.0625 (2)0.0687 (8)
C30.1032 (3)0.8119 (3)0.1328 (2)0.0885 (10)
H30.1148710.8499870.1894700.106*
C40.0344 (3)0.7535 (3)0.1205 (2)0.0890 (11)
H40.0003660.7528890.1683620.107*
C50.0165 (3)0.6960 (2)0.0385 (2)0.0764 (9)
H50.0315950.6575770.0308550.092*
C60.0690 (2)0.6937 (2)0.03415 (19)0.0590 (7)
C70.3214 (3)0.8676 (3)0.1672 (3)0.1215 (14)
H7A0.3634570.9137100.1729740.182*
H7B0.3700710.8000310.1648240.182*
H7C0.2903760.8767910.2216780.182*
C80.2261 (3)0.8875 (3)0.0751 (2)0.0838 (10)
H80.2601080.8753170.0206620.101*
C90.1518 (4)0.9972 (3)0.0731 (3)0.1234 (15)
H9A0.1974791.0405840.0811430.185*
H9B0.1150561.0104740.1243630.185*
H9C0.0963741.0093890.0126960.185*
C100.0541 (9)0.5239 (7)0.1096 (10)0.095 (3)0.5
H10A0.0094250.5251550.0876580.143*0.5
H10B0.0535310.4857420.1690530.143*0.5
H10C0.1220990.4934340.0623350.143*0.5
C110.0482 (3)0.6307 (2)0.1249 (2)0.0724 (8)
H110.1074070.6255750.1563970.087*0.5
H11A0.0706790.6543150.1748380.087*0.5
C120.0645 (7)0.6848 (7)0.1944 (6)0.090 (2)0.5
H12A0.0635640.7494320.2080820.135*0.5
H12B0.0752050.6454160.2530000.135*0.5
H12C0.1248590.6930910.1652640.135*0.5
C130.3001 (2)0.70519 (18)0.08931 (17)0.0488 (6)
H130.3416850.6658130.0363550.059*
C140.4629 (2)0.6423 (2)0.14744 (17)0.0535 (6)
C150.5525 (2)0.6832 (2)0.1227 (2)0.0659 (8)
C160.6601 (3)0.6175 (3)0.1172 (3)0.0897 (10)
H160.7208080.6426580.0999780.108*
C170.6787 (3)0.5167 (3)0.1366 (3)0.0975 (12)
H170.7514880.4742130.1316090.117*
C180.5902 (3)0.4782 (3)0.1634 (2)0.0861 (10)
H180.6038800.4097380.1771930.103*
C190.4798 (2)0.5397 (2)0.17050 (19)0.0630 (7)
C200.3929 (4)0.4128 (4)0.1431 (4)0.1463 (19)
H20A0.4012580.4367650.0774010.219*
H20B0.4573530.3567920.1480710.219*
H20C0.3265090.3921460.1642850.219*
C210.3827 (3)0.4963 (2)0.2054 (2)0.0750 (8)
H210.3140790.5506180.2012800.090*
C220.3693 (4)0.4620 (4)0.3099 (3)0.1383 (17)
H22A0.3075080.4348710.3304240.208*
H22B0.4369550.4112090.3171970.208*
H22C0.3549520.5180620.3484230.208*
C230.5315 (4)0.8187 (3)0.0061 (3)0.1116 (13)
H23A0.5185310.8895130.0191850.167*
H23B0.6027230.7823730.0462060.167*
H23C0.4729130.7993830.0192750.167*
C240.5321 (3)0.7948 (2)0.0996 (3)0.0800 (9)
H240.4565220.8293410.1377080.096*
C250.6132 (3)0.8381 (3)0.1269 (3)0.1253 (16)
H25A0.5953040.9085570.1101930.188*
H25B0.6062570.8285600.1947670.188*
H25C0.6889160.8043020.0927640.188*
O20.12206 (17)0.69493 (13)0.32048 (12)0.0628 (5)
H2A0.1267270.7323940.2727110.094*0.5
N30.09872 (18)0.74841 (15)0.40070 (14)0.0536 (5)
N40.25744 (17)0.79968 (15)0.34108 (14)0.0523 (5)
H4A0.2777770.7644700.2908470.063*0.5
C260.0044 (2)0.73872 (19)0.47751 (18)0.0588 (7)
C270.0237 (3)0.6675 (2)0.5517 (2)0.0798 (9)
C280.0700 (4)0.6619 (3)0.6251 (2)0.1081 (14)
H280.0600820.6166070.6764130.130*
C290.1761 (4)0.7217 (3)0.6233 (3)0.1133 (15)
H290.2370220.7169330.6734690.136*
C300.1931 (3)0.7884 (3)0.5480 (3)0.0917 (11)
H300.2658450.8273800.5472380.110*
C310.1041 (2)0.7988 (2)0.4731 (2)0.0670 (8)
C320.2233 (4)0.8733 (5)0.3569 (4)0.166 (2)
H32A0.2338900.9227480.3059550.249*
H32B0.2082400.8079100.3335340.249*
H32C0.2900540.8877380.4088760.249*
C330.1241 (3)0.8757 (2)0.3925 (2)0.0762 (9)
H330.0565410.8604480.3389210.091*
C340.1470 (4)0.9808 (3)0.4260 (3)0.1162 (14)
H34A0.1595891.0287890.3742280.174*
H34B0.2123930.9962430.4792300.174*
H34C0.0835050.9837430.4455800.174*
C350.1436 (4)0.4870 (3)0.5446 (4)0.1419 (18)
H35A0.2172080.4428560.5454290.213*
H35B0.0889730.4697840.5976680.213*
H35C0.1273400.4803930.4854470.213*
C360.1394 (3)0.5961 (3)0.5529 (2)0.0969 (11)
H360.1933150.6125880.4963210.116*
C370.1753 (5)0.6072 (4)0.6415 (3)0.164 (2)
H37A0.2486040.5607830.6393110.246*
H37B0.1772550.6745430.6427940.246*
H37C0.1225340.5933180.6982520.246*
C380.1674 (2)0.79680 (18)0.40791 (17)0.0526 (6)
H380.1506540.8309060.4639650.063*
C390.3230 (2)0.8611 (2)0.35050 (19)0.0577 (7)
C400.3113 (2)0.9527 (2)0.2983 (2)0.0637 (7)
C410.3783 (3)1.0100 (3)0.3047 (3)0.0852 (10)
H410.3723641.0708870.2704610.102*
C420.4536 (3)0.9773 (3)0.3615 (3)0.0998 (13)
H420.4970811.0166860.3658730.120*
C430.4644 (3)0.8878 (3)0.4110 (3)0.0986 (12)
H430.5157260.8669240.4484420.118*
C440.4005 (2)0.8264 (2)0.4071 (2)0.0743 (9)
C450.5297 (4)0.6509 (3)0.4136 (4)0.159 (2)
H45A0.5386470.5877660.4487750.239*
H45B0.5313420.6415430.3486620.239*
H45C0.5896760.6763150.4137420.239*
C460.4179 (3)0.7253 (3)0.4607 (3)0.0972 (11)
H460.3584460.6988180.4567830.117*
C470.4083 (6)0.7339 (4)0.5670 (4)0.190 (3)
H47A0.3372860.7811570.5955380.284*
H47B0.4135690.6694120.5989380.284*
H47C0.4680150.7564900.5732660.284*
C480.2590 (4)1.0519 (3)0.1495 (3)0.1172 (14)
H48A0.3316201.0153630.1115880.176*
H48B0.2048391.0659440.1123620.176*
H48C0.2620831.1138910.1681080.176*
C490.2251 (3)0.9893 (2)0.2389 (2)0.0772 (9)
H490.2173650.9294310.2169950.093*
C500.1114 (3)1.0455 (3)0.2993 (3)0.1122 (14)
H50A0.0908271.0054040.3554140.168*
H50B0.1139731.1075010.3183210.168*
H50C0.0567291.0595540.2625750.168*
C10A0.1195 (9)0.5201 (8)0.1035 (11)0.121 (4)0.5
H10D0.0958140.4961860.0560680.181*0.5
H10E0.1095610.4795730.1613910.181*0.5
H10F0.1973430.5160120.0796970.181*0.5
C12A0.0750 (9)0.6326 (11)0.1618 (9)0.155 (5)0.5
H12D0.1226190.7008920.1695530.232*0.5
H12E0.0851500.5966230.2224680.232*0.5
H12F0.0942530.6014250.1163270.232*0.5
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
O10.0547 (11)0.0666 (11)0.0509 (10)0.0126 (9)0.0151 (9)0.0088 (8)
N10.0474 (12)0.0596 (12)0.0424 (11)0.0151 (10)0.0124 (9)0.0014 (9)
N20.0442 (11)0.0553 (12)0.0499 (11)0.0135 (9)0.0144 (9)0.0053 (9)
C10.0530 (15)0.0566 (15)0.0486 (14)0.0113 (12)0.0221 (12)0.0015 (12)
C20.078 (2)0.0735 (19)0.0584 (17)0.0207 (16)0.0303 (15)0.0058 (15)
C30.116 (3)0.095 (2)0.067 (2)0.034 (2)0.049 (2)0.0177 (18)
C40.118 (3)0.088 (2)0.079 (2)0.025 (2)0.065 (2)0.0017 (19)
C50.085 (2)0.0711 (19)0.089 (2)0.0242 (17)0.0473 (19)0.0034 (17)
C60.0625 (17)0.0603 (16)0.0607 (16)0.0159 (14)0.0293 (14)0.0028 (13)
C70.106 (3)0.130 (3)0.113 (3)0.038 (3)0.009 (3)0.018 (3)
C80.096 (3)0.096 (2)0.0690 (19)0.044 (2)0.0319 (18)0.0290 (18)
C90.129 (4)0.091 (3)0.152 (4)0.047 (3)0.023 (3)0.001 (3)
C100.124 (9)0.087 (6)0.093 (6)0.059 (6)0.030 (7)0.008 (4)
C110.081 (2)0.083 (2)0.0742 (19)0.0446 (18)0.0325 (17)0.0076 (17)
C120.085 (6)0.127 (7)0.075 (5)0.056 (5)0.017 (4)0.007 (4)
C130.0483 (15)0.0532 (14)0.0444 (13)0.0179 (12)0.0079 (11)0.0017 (11)
C140.0444 (15)0.0645 (16)0.0499 (14)0.0101 (12)0.0144 (11)0.0080 (12)
C150.0477 (16)0.0784 (19)0.0719 (18)0.0175 (14)0.0123 (14)0.0158 (15)
C160.0489 (18)0.106 (3)0.113 (3)0.0171 (18)0.0178 (18)0.023 (2)
C170.056 (2)0.105 (3)0.114 (3)0.009 (2)0.029 (2)0.012 (2)
C180.076 (2)0.075 (2)0.092 (2)0.0003 (18)0.0253 (19)0.0003 (18)
C190.0589 (17)0.0642 (17)0.0585 (16)0.0073 (14)0.0172 (13)0.0012 (13)
C200.161 (5)0.151 (4)0.148 (4)0.083 (4)0.015 (3)0.044 (3)
C210.079 (2)0.0600 (17)0.081 (2)0.0184 (16)0.0209 (17)0.0085 (16)
C220.160 (4)0.172 (5)0.098 (3)0.089 (4)0.029 (3)0.039 (3)
C230.127 (4)0.092 (3)0.119 (3)0.051 (2)0.021 (3)0.009 (2)
C240.0565 (18)0.080 (2)0.105 (3)0.0300 (16)0.0039 (17)0.0223 (19)
C250.094 (3)0.123 (3)0.180 (4)0.056 (3)0.022 (3)0.045 (3)
O20.0705 (12)0.0709 (12)0.0478 (10)0.0265 (10)0.0076 (9)0.0091 (9)
N30.0563 (13)0.0590 (13)0.0436 (11)0.0176 (11)0.0089 (10)0.0036 (10)
N40.0505 (13)0.0568 (12)0.0497 (11)0.0134 (10)0.0157 (10)0.0037 (10)
C260.0686 (18)0.0524 (15)0.0500 (14)0.0218 (14)0.0015 (13)0.0044 (12)
C270.100 (3)0.0618 (18)0.0597 (17)0.0181 (17)0.0001 (17)0.0000 (15)
C280.142 (4)0.072 (2)0.072 (2)0.027 (2)0.020 (2)0.0108 (18)
C290.113 (3)0.079 (2)0.106 (3)0.038 (2)0.049 (2)0.008 (2)
C300.074 (2)0.076 (2)0.101 (3)0.0251 (18)0.0218 (19)0.012 (2)
C310.0642 (19)0.0595 (17)0.0709 (18)0.0225 (14)0.0013 (15)0.0119 (14)
C320.138 (4)0.218 (6)0.183 (5)0.080 (4)0.096 (4)0.045 (4)
C330.0566 (18)0.083 (2)0.079 (2)0.0134 (16)0.0134 (15)0.0004 (17)
C340.128 (3)0.075 (2)0.113 (3)0.016 (2)0.002 (3)0.012 (2)
C350.164 (5)0.078 (3)0.148 (4)0.002 (3)0.033 (3)0.003 (3)
C360.120 (3)0.081 (2)0.067 (2)0.010 (2)0.020 (2)0.0134 (17)
C370.189 (5)0.184 (5)0.105 (3)0.015 (4)0.065 (4)0.004 (3)
C380.0579 (16)0.0536 (15)0.0446 (13)0.0102 (13)0.0185 (12)0.0017 (11)
C390.0467 (15)0.0641 (17)0.0626 (16)0.0131 (13)0.0133 (13)0.0151 (14)
C400.0568 (17)0.0624 (17)0.0743 (18)0.0198 (14)0.0147 (14)0.0120 (15)
C410.071 (2)0.077 (2)0.111 (3)0.0306 (18)0.011 (2)0.0219 (19)
C420.061 (2)0.110 (3)0.141 (3)0.034 (2)0.019 (2)0.046 (3)
C430.060 (2)0.118 (3)0.127 (3)0.017 (2)0.040 (2)0.030 (3)
C440.0511 (17)0.090 (2)0.085 (2)0.0122 (16)0.0262 (16)0.0201 (18)
C450.145 (5)0.107 (3)0.189 (5)0.010 (3)0.040 (4)0.011 (3)
C460.085 (3)0.106 (3)0.109 (3)0.013 (2)0.061 (2)0.004 (2)
C470.260 (7)0.170 (5)0.121 (4)0.007 (5)0.097 (5)0.008 (4)
C480.129 (4)0.104 (3)0.099 (3)0.026 (3)0.019 (2)0.020 (2)
C490.098 (3)0.0602 (17)0.090 (2)0.0362 (17)0.041 (2)0.0122 (16)
C500.066 (2)0.146 (4)0.118 (3)0.026 (2)0.038 (2)0.038 (3)
C10A0.145 (11)0.103 (7)0.129 (8)0.065 (8)0.046 (10)0.043 (6)
C12A0.110 (8)0.236 (17)0.133 (10)0.085 (10)0.033 (7)0.035 (10)
Geometric parameters (Å, º) top
O1—H10.8200N3—C261.442 (3)
O1—N11.372 (2)N3—C381.320 (3)
N1—C11.444 (3)N4—H4A0.8600
N1—C131.321 (3)N4—C381.306 (3)
N2—H20.8600N4—C391.439 (3)
N2—C131.305 (3)C26—C271.398 (4)
N2—C141.436 (3)C26—C311.405 (4)
C1—C21.400 (4)C27—C281.395 (5)
C1—C61.398 (4)C27—C361.518 (5)
C2—C31.398 (4)C28—H280.9300
C2—C81.527 (4)C28—C291.370 (6)
C3—H30.9300C29—H290.9300
C3—C41.366 (5)C29—C301.370 (5)
C4—H40.9300C30—H300.9300
C4—C51.365 (4)C30—C311.385 (4)
C5—H50.9300C31—C331.513 (4)
C5—C61.399 (4)C32—H32A0.9600
C6—C111.508 (4)C32—H32B0.9600
C7—H7A0.9600C32—H32C0.9600
C7—H7B0.9600C32—C331.529 (5)
C7—H7C0.9600C33—H330.9800
C7—C81.531 (5)C33—C341.524 (5)
C8—H80.9800C34—H34A0.9600
C8—C91.533 (5)C34—H34B0.9600
C9—H9A0.9600C34—H34C0.9600
C9—H9B0.9600C35—H35A0.9600
C9—H9C0.9600C35—H35B0.9600
C10—H10A0.9600C35—H35C0.9600
C10—H10B0.9600C35—C361.537 (5)
C10—H10C0.9600C36—H360.9800
C10—C111.520 (9)C36—C371.524 (5)
C11—H110.9800C37—H37A0.9600
C11—H11A0.9800C37—H37B0.9600
C11—C121.543 (8)C37—H37C0.9600
C11—C10A1.548 (11)C38—H380.9300
C11—C12A1.536 (9)C39—C401.402 (4)
C12—H12A0.9600C39—C441.405 (4)
C12—H12B0.9600C40—C411.394 (4)
C12—H12C0.9600C40—C491.524 (4)
C13—H130.9300C41—H410.9300
C14—C151.406 (4)C41—C421.384 (5)
C14—C191.403 (4)C42—H420.9300
C15—C161.392 (4)C42—C431.360 (5)
C15—C241.519 (4)C43—H430.9300
C16—H160.9300C43—C441.396 (5)
C16—C171.368 (5)C44—C461.520 (5)
C17—H170.9300C45—H45A0.9600
C17—C181.371 (5)C45—H45B0.9600
C18—H180.9300C45—H45C0.9600
C18—C191.397 (4)C45—C461.518 (5)
C19—C211.517 (4)C46—H460.9800
C20—H20A0.9600C46—C471.526 (6)
C20—H20B0.9600C47—H47A0.9600
C20—H20C0.9600C47—H47B0.9600
C20—C211.517 (5)C47—H47C0.9600
C21—H210.9800C48—H48A0.9600
C21—C221.515 (5)C48—H48B0.9600
C22—H22A0.9600C48—H48C0.9600
C22—H22B0.9600C48—C491.522 (5)
C22—H22C0.9600C49—H490.9800
C23—H23A0.9600C49—C501.505 (5)
C23—H23B0.9600C50—H50A0.9600
C23—H23C0.9600C50—H50B0.9600
C23—C241.531 (5)C50—H50C0.9600
C24—H240.9800C10A—H10D0.9600
C24—C251.535 (4)C10A—H10E0.9600
C25—H25A0.9600C10A—H10F0.9600
C25—H25B0.9600C12A—H12D0.9600
C25—H25C0.9600C12A—H12E0.9600
O2—H2A0.8200C12A—H12F0.9600
O2—N31.370 (2)
N1—O1—H1109.5C38—N3—C26123.7 (2)
O1—N1—C1116.06 (19)C38—N4—H4A119.6
C13—N1—O1120.08 (19)C38—N4—C39120.8 (2)
C13—N1—C1123.8 (2)C39—N4—H4A119.6
C13—N2—H2120.5C27—C26—N3119.0 (3)
C13—N2—C14118.9 (2)C27—C26—C31122.4 (3)
C14—N2—H2120.5C31—C26—N3118.6 (2)
C2—C1—N1119.0 (2)C26—C27—C36122.9 (3)
C6—C1—N1118.1 (2)C28—C27—C26116.9 (3)
C6—C1—C2122.8 (2)C28—C27—C36120.2 (3)
C1—C2—C8122.8 (2)C27—C28—H28119.2
C3—C2—C1116.5 (3)C29—C28—C27121.6 (3)
C3—C2—C8120.6 (3)C29—C28—H28119.2
C2—C3—H3119.1C28—C29—H29119.8
C4—C3—C2121.8 (3)C28—C29—C30120.4 (3)
C4—C3—H3119.1C30—C29—H29119.8
C3—C4—H4119.8C29—C30—H30119.3
C5—C4—C3120.5 (3)C29—C30—C31121.3 (4)
C5—C4—H4119.8C31—C30—H30119.3
C4—C5—H5119.4C26—C31—C33122.0 (2)
C4—C5—C6121.3 (3)C30—C31—C26117.4 (3)
C6—C5—H5119.4C30—C31—C33120.5 (3)
C1—C6—C5117.0 (3)H32A—C32—H32B109.5
C1—C6—C11121.9 (2)H32A—C32—H32C109.5
C5—C6—C11121.0 (3)H32B—C32—H32C109.5
H7A—C7—H7B109.5C33—C32—H32A109.5
H7A—C7—H7C109.5C33—C32—H32B109.5
H7B—C7—H7C109.5C33—C32—H32C109.5
C8—C7—H7A109.5C31—C33—C32111.4 (3)
C8—C7—H7B109.5C31—C33—H33108.6
C8—C7—H7C109.5C31—C33—C34110.4 (3)
C2—C8—C7111.5 (3)C32—C33—H33108.6
C2—C8—H8107.7C34—C33—C32109.0 (3)
C2—C8—C9111.1 (3)C34—C33—H33108.6
C7—C8—H8107.7C33—C34—H34A109.5
C7—C8—C9110.8 (3)C33—C34—H34B109.5
C9—C8—H8107.7C33—C34—H34C109.5
C8—C9—H9A109.5H34A—C34—H34B109.5
C8—C9—H9B109.5H34A—C34—H34C109.5
C8—C9—H9C109.5H34B—C34—H34C109.5
H9A—C9—H9B109.5H35A—C35—H35B109.5
H9A—C9—H9C109.5H35A—C35—H35C109.5
H9B—C9—H9C109.5H35B—C35—H35C109.5
H10A—C10—H10B109.5C36—C35—H35A109.5
H10A—C10—H10C109.5C36—C35—H35B109.5
H10B—C10—H10C109.5C36—C35—H35C109.5
C11—C10—H10A109.5C27—C36—C35110.5 (4)
C11—C10—H10B109.5C27—C36—H36107.7
C11—C10—H10C109.5C27—C36—C37112.3 (3)
C6—C11—C10115.0 (6)C35—C36—H36107.7
C6—C11—H11106.8C37—C36—C35110.9 (4)
C6—C11—H11A109.4C37—C36—H36107.7
C6—C11—C12110.2 (4)C36—C37—H37A109.5
C6—C11—C10A108.6 (6)C36—C37—H37B109.5
C6—C11—C12A112.8 (5)C36—C37—H37C109.5
C10—C11—H11106.8H37A—C37—H37B109.5
C10—C11—C12110.8 (6)H37A—C37—H37C109.5
C12—C11—H11106.8H37B—C37—H37C109.5
C10A—C11—H11A109.4N3—C38—H38118.0
C12A—C11—H11A109.4N4—C38—N3123.9 (2)
C12A—C11—C10A107.1 (7)N4—C38—H38118.0
C11—C12—H12A109.5C40—C39—N4118.3 (2)
C11—C12—H12B109.5C40—C39—C44121.7 (3)
C11—C12—H12C109.5C44—C39—N4120.0 (3)
H12A—C12—H12B109.5C39—C40—C49120.5 (2)
H12A—C12—H12C109.5C41—C40—C39118.1 (3)
H12B—C12—H12C109.5C41—C40—C49121.4 (3)
N1—C13—H13117.9C40—C41—H41119.6
N2—C13—N1124.2 (2)C42—C41—C40120.7 (3)
N2—C13—H13117.9C42—C41—H41119.6
C15—C14—N2118.7 (2)C41—C42—H42119.9
C19—C14—N2119.7 (2)C43—C42—C41120.3 (3)
C19—C14—C15121.5 (2)C43—C42—H42119.9
C14—C15—C24120.7 (2)C42—C43—H43119.0
C16—C15—C14117.7 (3)C42—C43—C44121.9 (3)
C16—C15—C24121.5 (3)C44—C43—H43119.0
C15—C16—H16119.2C39—C44—C46122.4 (3)
C17—C16—C15121.5 (3)C43—C44—C39117.3 (3)
C17—C16—H16119.2C43—C44—C46120.3 (3)
C16—C17—H17119.9H45A—C45—H45B109.5
C16—C17—C18120.2 (3)H45A—C45—H45C109.5
C18—C17—H17119.9H45B—C45—H45C109.5
C17—C18—H18119.3C46—C45—H45A109.5
C17—C18—C19121.4 (3)C46—C45—H45B109.5
C19—C18—H18119.3C46—C45—H45C109.5
C14—C19—C21122.0 (2)C44—C46—H46107.5
C18—C19—C14117.5 (3)C44—C46—C47112.4 (4)
C18—C19—C21120.5 (3)C45—C46—C44111.1 (4)
H20A—C20—H20B109.5C45—C46—H46107.5
H20A—C20—H20C109.5C45—C46—C47110.6 (4)
H20B—C20—H20C109.5C47—C46—H46107.5
C21—C20—H20A109.5C46—C47—H47A109.5
C21—C20—H20B109.5C46—C47—H47B109.5
C21—C20—H20C109.5C46—C47—H47C109.5
C19—C21—C20112.5 (3)H47A—C47—H47B109.5
C19—C21—H21107.2H47A—C47—H47C109.5
C20—C21—H21107.2H47B—C47—H47C109.5
C22—C21—C19110.9 (3)H48A—C48—H48B109.5
C22—C21—C20111.4 (3)H48A—C48—H48C109.5
C22—C21—H21107.2H48B—C48—H48C109.5
C21—C22—H22A109.5C49—C48—H48A109.5
C21—C22—H22B109.5C49—C48—H48B109.5
C21—C22—H22C109.5C49—C48—H48C109.5
H22A—C22—H22B109.5C40—C49—H49106.9
H22A—C22—H22C109.5C48—C49—C40114.3 (3)
H22B—C22—H22C109.5C48—C49—H49106.9
H23A—C23—H23B109.5C50—C49—C40111.3 (3)
H23A—C23—H23C109.5C50—C49—C48110.2 (3)
H23B—C23—H23C109.5C50—C49—H49106.9
C24—C23—H23A109.5C49—C50—H50A109.5
C24—C23—H23B109.5C49—C50—H50B109.5
C24—C23—H23C109.5C49—C50—H50C109.5
C15—C24—C23110.9 (3)H50A—C50—H50B109.5
C15—C24—H24106.8H50A—C50—H50C109.5
C15—C24—C25114.2 (3)H50B—C50—H50C109.5
C23—C24—H24106.8C11—C10A—H10D109.5
C23—C24—C25110.9 (3)C11—C10A—H10E109.5
C25—C24—H24106.8C11—C10A—H10F109.5
C24—C25—H25A109.5H10D—C10A—H10E109.5
C24—C25—H25B109.5H10D—C10A—H10F109.5
C24—C25—H25C109.5H10E—C10A—H10F109.5
H25A—C25—H25B109.5C11—C12A—H12D109.5
H25A—C25—H25C109.5C11—C12A—H12E109.5
H25B—C25—H25C109.5C11—C12A—H12F109.5
N3—O2—H2A109.5H12D—C12A—H12E109.5
O2—N3—C26116.1 (2)H12D—C12A—H12F109.5
C38—N3—O2119.9 (2)H12E—C12A—H12F109.5
O1—N1—C1—C297.6 (3)C19—C14—C15—C24179.0 (3)
O1—N1—C1—C680.3 (3)C24—C15—C16—C17179.0 (3)
O1—N1—C13—N20.3 (3)O2—N3—C26—C2794.6 (3)
N1—C1—C2—C3179.3 (3)O2—N3—C26—C3183.1 (3)
N1—C1—C2—C82.6 (4)O2—N3—C38—N41.8 (4)
N1—C1—C6—C5179.1 (2)N3—C26—C27—C28179.1 (3)
N1—C1—C6—C110.4 (4)N3—C26—C27—C363.0 (4)
N2—C14—C15—C16179.6 (3)N3—C26—C31—C30179.7 (3)
N2—C14—C15—C242.4 (4)N3—C26—C31—C332.4 (4)
N2—C14—C19—C18179.6 (2)N4—C39—C40—C41177.5 (2)
N2—C14—C19—C211.8 (4)N4—C39—C40—C494.3 (4)
C1—N1—C13—N2176.6 (2)N4—C39—C44—C43177.9 (3)
C1—C2—C3—C42.5 (5)N4—C39—C44—C460.6 (4)
C1—C2—C8—C7123.9 (3)C26—N3—C38—N4174.9 (2)
C1—C2—C8—C9111.9 (3)C26—C27—C28—C291.6 (5)
C1—C6—C11—C10134.9 (5)C26—C27—C36—C35114.4 (4)
C1—C6—C11—C1299.0 (4)C26—C27—C36—C37121.2 (4)
C1—C6—C11—C10A102.4 (5)C26—C31—C33—C32137.3 (4)
C1—C6—C11—C12A139.1 (7)C26—C31—C33—C34101.4 (3)
C2—C1—C6—C51.3 (4)C27—C26—C31—C302.7 (4)
C2—C1—C6—C11177.5 (3)C27—C26—C31—C33180.0 (3)
C2—C3—C4—C50.6 (6)C27—C28—C29—C300.7 (6)
C3—C2—C8—C758.0 (4)C28—C27—C36—C3563.4 (4)
C3—C2—C8—C966.1 (4)C28—C27—C36—C3760.9 (5)
C3—C4—C5—C61.1 (5)C28—C29—C30—C311.3 (6)
C4—C5—C6—C10.8 (4)C29—C30—C31—C260.3 (5)
C4—C5—C6—C11179.6 (3)C29—C30—C31—C33177.7 (3)
C5—C6—C11—C1046.4 (6)C30—C31—C33—C3245.5 (4)
C5—C6—C11—C1279.7 (4)C30—C31—C33—C3475.8 (4)
C5—C6—C11—C10A79.0 (6)C31—C26—C27—C283.3 (4)
C5—C6—C11—C12A39.6 (7)C31—C26—C27—C36174.6 (3)
C6—C1—C2—C32.9 (4)C36—C27—C28—C29176.4 (4)
C6—C1—C2—C8175.2 (3)C38—N3—C26—C2778.7 (3)
C8—C2—C3—C4175.6 (3)C38—N3—C26—C31103.6 (3)
C13—N1—C1—C278.8 (3)C38—N4—C39—C40102.3 (3)
C13—N1—C1—C6103.3 (3)C38—N4—C39—C4480.8 (3)
C13—N2—C14—C15110.0 (3)C39—N4—C38—N3174.6 (2)
C13—N2—C14—C1973.3 (3)C39—C40—C41—C420.4 (4)
C14—N2—C13—N1171.9 (2)C39—C40—C49—C48148.6 (3)
C14—C15—C16—C171.1 (5)C39—C40—C49—C5085.7 (3)
C14—C15—C24—C2385.2 (3)C39—C44—C46—C45107.7 (4)
C14—C15—C24—C25148.6 (3)C39—C44—C46—C47127.8 (4)
C14—C19—C21—C20123.2 (3)C40—C39—C44—C431.2 (4)
C14—C19—C21—C22111.2 (3)C40—C39—C44—C46177.3 (3)
C15—C14—C19—C183.1 (4)C40—C41—C42—C430.9 (5)
C15—C14—C19—C21174.7 (2)C41—C40—C49—C4833.2 (4)
C15—C16—C17—C180.9 (6)C41—C40—C49—C5092.5 (4)
C16—C15—C24—C2392.7 (4)C41—C42—C43—C440.4 (6)
C16—C15—C24—C2533.6 (4)C42—C43—C44—C390.7 (5)
C16—C17—C18—C190.8 (6)C42—C43—C44—C46177.9 (3)
C17—C18—C19—C141.1 (5)C43—C44—C46—C4570.8 (4)
C17—C18—C19—C21176.7 (3)C43—C44—C46—C4753.7 (5)
C18—C19—C21—C2059.0 (4)C44—C39—C40—C410.7 (4)
C18—C19—C21—C2266.5 (4)C44—C39—C40—C49178.9 (3)
C19—C14—C15—C163.1 (4)C49—C40—C41—C42177.9 (3)
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
O1—H1···O20.821.762.577 (3)175
N2—H2···N40.862.092.906 (3)158
O2—H2A···O10.821.762.577 (3)177
N4—H4A···N20.862.072.906 (3)164
 

Acknowledgements

The authors would like to thank the University of KwaZulu-Natal for research facilities.

References

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