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

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ISSN: 2414-3146

catena-Poly[[bis­­[tris­­(4-meth­­oxy­phen­yl)phosphine-κP]silver(I)]-μ-thio­cyanato-κ2N:S]

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aDepartment of Chemistry, University of Pretoria, Lynnwood Road, Hatfield, Pretoria, 0002, South Africa, and bDepartment of Chemical Sciences, University of Johannesburg, PO Box 524, Auckland Park, 2006, Johannesburg, South Africa
*Correspondence e-mail: [email protected]

Edited by S. Bernès, Benemérita Universidad Autónoma de Puebla, México (Received 19 August 2025; accepted 10 September 2025; online 23 September 2025)

The coordination polymer, [Ag(NCS)(C21H21O3P)2]n or {[Ag(P(4-OMePh)3)2]-μ-NCS}n, features μ-thio­cyanato ligands bridging between neighbouring silver(I) atoms, generating chains along the b-axis direction. Each AgI atom is four-coordinate, with two phospho­rus donors from two distinct tris­(p-meth­oxy­phen­yl)phosphine ligands, and two atoms from the thio­cyanato ligands in severely distorted tetra­hedral shape. The Ag—P [2.4331 (6) and 2.4625 (5) Å], Ag—N [2.339 (2) Å] and Ag—S [2.6760 (6) Å] bond lengths all appear within the expected ranges, with corresponding P—Ag—P and S—Ag—N angles of 129.610 (19) and 86.75 (6)°. In the crystal, the polymeric chains pack into layers parallel to (001) separated by the aryl groups of the phosphine ligands.

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

Structure description

Silver(I) phosphine complexes incorporating thio­cyanato ligands have been extensively investigated owing to their potential anti­microbial and anti­cancer activities, as well as their diverse structural motifs arising from the ambidentate nature of the SCN ligand (Engelbrecht et al., 2018View full citation; Omondi & Meijboom, 2010View full citation; Naganagowda et al., 2023View full citation). The thio­cyanate anions can coordinate via sulfur or nitro­gen atoms, or bridge between two central atoms, leading to polymeric motifs. The title complex, {[Ag(P(4-OMePh)3)2]-μ-NCS}n, crystallizes as a coordination polymer forming chains (Fig. 1[link]). Each AgI atom is coordinated by two phospho­rus donors from two distinct tris­(4-meth­oxy­phen­yl)phosphine ligands, and two atoms from μ-bridging thio­cyanato ligands (one S and one N atom) producing a distorted tetra­hedral coordination environment. The Ag—P [2.4331 (6) and 2.4625 (5) Å], Ag—N [2.339 (2) Å] and Ag—S [2.6760 (6) Å] bond lengths are consistent with related structures. The S—Ag—N angle of the bridging ligand is 86.75 (6)°, which gives rise to the corrugated pattern that is observed of the resulting one-dimensional inorganic polymer. The packing diagram (Fig. 2[link]) shows how polymer chains propagate along the b-axis direction and arrange into layers parallel to the (001) plane, with the bulky aryl substituents from the phosphine ligands forming hydro­phobic regions between the Ag—SCN-rich layers. Weak C—H⋯π contacts are observed between chains (Table 1[link]), but no argentophilic or significant hydrogen-bonding inter­actions are evident.

Table 1
Hydrogen-bond geometry (Å, °)

D—H⋯A D—H H⋯A DA D—H⋯A
C20—H20⋯S1i 0.95 2.85 3.765 (2) 162
C31—H31⋯O5ii 0.95 2.55 3.436 (3) 155
C7—H7⋯N1 0.95 2.62 3.457 (3) 148
C18—H18⋯O4iii 0.95 2.58 3.313 (3) 134
C34—H34⋯S1i 0.95 3.02 3.874 (3) 150
C8—H8C⋯O4iv 0.98 2.56 3.505 (3) 163
C36—H36A⋯O1v 0.98 2.64 3.588 (3) 164
Symmetry codes: (i) Mathematical equation; (ii) Mathematical equation; (iii) Mathematical equation; (iv) Mathematical equation; (v) Mathematical equation.
[Figure 1]
Figure 1
Mol­ecular structure of the title compound. Displacement ellipsoids are drawn at the 50% probability level. Hydrogen atoms are omitted for clarity.
[Figure 2]
Figure 2
Packing diagram as viewed along the b axis.

Synthesis and crystallization

A 1 mmol solution of silver thio­cyanate was prepared in 10 ml aceto­nitrile and carefully added to a solution of tris­(4-meth­oxy­phen­yl)phosphine (2 mmol) in 10 ml aceto­nitrile. The solution was stirred at 353 K for 12 h, removed and left to slowly cool to room temperature upon which colourless crystals formed.

Refinement

Selected crystal data, data collection and structure refinement details are summarized in Table 2[link].

Table 2
Experimental details

Crystal data
Chemical formula [Ag(NCS)(C21H21O3P)2]
Mr 870.64
Crystal system, space group Monoclinic, P21/n
Temperature (K) 150
a, b, c (Å) 14.8676 (2), 11.1692 (2), 24.5206 (4)
β (°) 94.571 (1)
V3) 4058.92 (11)
Z 4
Radiation type Mo Kα
μ (mm−1) 0.68
Crystal size (mm) 0.27 × 0.19 × 0.13
 
Data collection
Diffractometer XtaLAB Synergy R, DW system, HyPix
Absorption correction Multi-scan (CrysAlis PRO; Rigaku OD, 2022View full citation)
Tmin, Tmax 0.644, 1.000
No. of measured, independent and observed [I > 2σ(I)] reflections 62976, 8935, 7505
Rint 0.044
(sin θ/λ)max−1) 0.641
 
Refinement
R[F2 > 2σ(F2)], wR(F2), S 0.031, 0.077, 1.06
No. of reflections 8935
No. of parameters 493
H-atom treatment H-atom parameters constrained
Δρmax, Δρmin (e Å−3) 0.49, −0.58
Computer programs: CrysAlis PRO (Rigaku OD, 2022View full citation), SHELXT (Sheldrick, 2015aView full citation), SHELXL (Sheldrick, 2015bView full citation) and OLEX2 (Dolomanov et al., 2009View full citation).

Structural data


Computing details top

catena-Poly[[bis[tris(4-methoxyphenyl)phosphine-κP]silver(I)]-µ-thiocyanato-κ2N:S] top
Crystal data top
[Ag(NCS)(C21H21O3P)2]F(000) = 1792
Mr = 870.64Dx = 1.425 Mg m3
Monoclinic, P21/nMo Kα radiation, λ = 0.71073 Å
a = 14.8676 (2) ÅCell parameters from 39976 reflections
b = 11.1692 (2) Åθ = 2.5–31.1°
c = 24.5206 (4) ŵ = 0.68 mm1
β = 94.571 (1)°T = 150 K
V = 4058.92 (11) Å3Block, colourless
Z = 40.27 × 0.19 × 0.13 mm
Data collection top
XtaLAB Synergy R, DW system, HyPix
diffractometer
8935 independent reflections
Radiation source: Rotating-anode X-ray tube, Rigaku (Mo) X-ray Source7505 reflections with I > 2σ(I)
Mirror monochromatorRint = 0.044
Detector resolution: 10.0000 pixels mm-1θmax = 27.1°, θmin = 2.4°
ω scansh = 1819
Absorption correction: multi-scan
(CrysAlisPro; Rigaku OD, 2022)
k = 1413
Tmin = 0.644, Tmax = 1.000l = 3130
62976 measured reflections
Refinement top
Refinement on F2Primary atom site location: dual
Least-squares matrix: fullSecondary atom site location: difference Fourier map
R[F2 > 2σ(F2)] = 0.031Hydrogen site location: inferred from neighbouring sites
wR(F2) = 0.077H-atom parameters constrained
S = 1.06 w = 1/[σ2(Fo2) + (0.0282P)2 + 4.1777P]
where P = (Fo2 + 2Fc2)/3
8935 reflections(Δ/σ)max = 0.001
493 parametersΔρmax = 0.49 e Å3
0 restraintsΔρmin = 0.58 e Å3
Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top
xyzUiso*/Ueq
Ag10.66984 (2)0.50887 (2)0.30002 (2)0.02483 (5)
P10.73213 (4)0.54588 (5)0.39459 (2)0.02116 (11)
P20.51504 (4)0.52475 (5)0.26028 (2)0.02381 (11)
S10.68048 (4)0.07281 (5)0.24639 (3)0.03463 (14)
O20.59860 (12)0.27681 (15)0.58360 (7)0.0384 (4)
O11.11395 (11)0.37447 (16)0.41850 (7)0.0371 (4)
O60.47541 (13)0.35429 (17)0.02842 (7)0.0443 (4)
O30.69363 (13)1.06316 (14)0.44933 (7)0.0385 (4)
O40.35522 (14)0.15703 (16)0.40075 (8)0.0498 (5)
O50.32276 (13)0.99377 (15)0.22997 (8)0.0440 (4)
N10.70679 (15)0.31120 (18)0.27959 (9)0.0398 (5)
C90.68902 (14)0.46807 (18)0.45266 (9)0.0229 (4)
C160.72705 (14)0.70339 (18)0.41235 (8)0.0227 (4)
C210.70919 (14)0.78583 (18)0.37030 (9)0.0250 (4)
H210.70480.75840.33350.030*
C20.85029 (14)0.50274 (18)0.40142 (8)0.0221 (4)
C100.60018 (15)0.4293 (2)0.45011 (10)0.0301 (5)
H100.56150.44620.41830.036*
C200.69765 (15)0.90707 (19)0.38054 (9)0.0270 (4)
H200.68550.96170.35120.032*
C300.45408 (15)0.66641 (19)0.25827 (9)0.0262 (4)
C310.35989 (15)0.6769 (2)0.25667 (9)0.0297 (5)
H310.32430.60770.26170.036*
C10.69643 (15)0.21315 (19)0.26582 (9)0.0261 (4)
C350.50410 (15)0.7704 (2)0.25155 (9)0.0300 (5)
H350.56810.76540.25360.036*
C370.49723 (15)0.47051 (19)0.19013 (9)0.0268 (4)
C170.73436 (17)0.7458 (2)0.46607 (9)0.0305 (5)
H170.74720.69140.49550.037*
C270.37138 (16)0.3585 (2)0.37607 (10)0.0324 (5)
H270.33760.37960.40590.039*
C280.40353 (15)0.4474 (2)0.34319 (9)0.0300 (5)
H280.39200.52910.35090.036*
C140.74435 (16)0.4418 (2)0.49992 (9)0.0303 (5)
H140.80530.46800.50290.036*
C60.95639 (15)0.3426 (2)0.38742 (9)0.0287 (5)
H60.96810.26430.37460.034*
C70.86955 (15)0.38898 (19)0.38202 (9)0.0269 (4)
H70.82210.34220.36470.032*
C230.45283 (14)0.4175 (2)0.29879 (9)0.0262 (4)
C30.92086 (15)0.5715 (2)0.42520 (9)0.0285 (5)
H30.90920.64960.43830.034*
C51.02591 (14)0.4116 (2)0.41173 (9)0.0274 (5)
C190.70416 (15)0.94696 (19)0.43421 (9)0.0281 (5)
C120.62276 (16)0.33994 (19)0.53923 (9)0.0294 (5)
C420.57267 (16)0.4433 (2)0.16172 (9)0.0309 (5)
H420.63150.45160.17960.037*
C400.47772 (17)0.3922 (2)0.08168 (9)0.0330 (5)
C320.31812 (16)0.7869 (2)0.24782 (10)0.0331 (5)
H320.25440.79300.24750.040*
C240.46850 (16)0.2966 (2)0.28901 (10)0.0339 (5)
H240.50190.27490.25910.041*
C110.56625 (15)0.3662 (2)0.49308 (11)0.0340 (5)
H110.50490.34140.49070.041*
C260.38838 (16)0.2386 (2)0.36553 (10)0.0345 (5)
C410.56264 (17)0.4047 (2)0.10806 (10)0.0352 (5)
H410.61440.38660.08930.042*
C130.71155 (16)0.3784 (2)0.54238 (9)0.0330 (5)
H130.75030.36090.57410.040*
C41.00805 (16)0.5267 (2)0.42997 (10)0.0326 (5)
H41.05600.57480.44580.039*
C250.43689 (17)0.2075 (2)0.32159 (11)0.0373 (6)
H250.44830.12580.31400.045*
C180.72306 (17)0.8662 (2)0.47693 (9)0.0333 (5)
H180.72820.89390.51370.040*
C340.46310 (16)0.8807 (2)0.24194 (10)0.0336 (5)
H340.49860.95010.23720.040*
C390.40201 (17)0.4172 (2)0.10910 (10)0.0393 (6)
H390.34340.40820.09110.047*
C81.13135 (18)0.2540 (2)0.40288 (11)0.0408 (6)
H8A1.11270.24330.36390.061*
H8B1.09720.19890.42450.061*
H8C1.19600.23710.40940.061*
C330.36983 (16)0.8888 (2)0.23934 (10)0.0322 (5)
C380.41245 (16)0.4556 (2)0.16334 (10)0.0374 (6)
H380.36050.47180.18220.045*
C220.6868 (2)1.1498 (2)0.40634 (12)0.0500 (7)
H22A0.63091.13650.38310.075*
H22B0.73861.14200.38430.075*
H22C0.68601.23040.42210.075*
C360.3588 (2)1.0762 (2)0.19290 (11)0.0435 (6)
H36A0.36661.03570.15810.065*
H36B0.41731.10570.20860.065*
H36C0.31721.14370.18650.065*
C430.3909 (2)0.3625 (3)0.00316 (11)0.0502 (7)
H43A0.39900.34140.04130.075*
H43B0.36790.44460.00150.075*
H43C0.34780.30720.01160.075*
C150.50676 (19)0.2450 (3)0.58537 (14)0.0569 (8)
H15A0.48890.19130.55480.085*
H15B0.46940.31730.58260.085*
H15C0.49830.20420.62000.085*
C290.3757 (3)0.0334 (3)0.39194 (18)0.0846 (15)
H29A0.35000.00890.35560.127*
H29B0.34970.01570.41990.127*
H29C0.44130.02240.39430.127*
Atomic displacement parameters (Å2) top
U11U22U33U12U13U23
Ag10.02521 (9)0.02476 (9)0.02393 (9)0.00037 (6)0.00173 (6)0.00318 (6)
P10.0235 (3)0.0193 (2)0.0204 (2)0.00024 (19)0.0005 (2)0.00145 (19)
P20.0218 (3)0.0293 (3)0.0203 (3)0.0003 (2)0.0015 (2)0.0013 (2)
S10.0364 (3)0.0261 (3)0.0433 (3)0.0071 (2)0.0153 (3)0.0092 (2)
O20.0388 (10)0.0378 (9)0.0407 (10)0.0002 (7)0.0165 (8)0.0114 (7)
O10.0223 (8)0.0428 (10)0.0456 (10)0.0053 (7)0.0015 (7)0.0031 (8)
O60.0483 (11)0.0557 (11)0.0275 (9)0.0094 (9)0.0060 (8)0.0127 (8)
O30.0557 (11)0.0209 (8)0.0396 (10)0.0016 (7)0.0082 (8)0.0056 (7)
O40.0600 (13)0.0374 (10)0.0566 (12)0.0122 (9)0.0330 (10)0.0159 (9)
O50.0425 (10)0.0306 (9)0.0613 (12)0.0091 (7)0.0185 (9)0.0065 (8)
N10.0485 (13)0.0267 (10)0.0434 (12)0.0027 (9)0.0016 (10)0.0060 (9)
C90.0245 (10)0.0190 (9)0.0252 (10)0.0006 (8)0.0028 (8)0.0017 (8)
C160.0248 (10)0.0212 (10)0.0223 (10)0.0011 (8)0.0026 (8)0.0014 (8)
C210.0276 (11)0.0248 (10)0.0228 (10)0.0012 (8)0.0034 (8)0.0025 (8)
C20.0216 (10)0.0243 (10)0.0204 (9)0.0011 (8)0.0020 (8)0.0009 (8)
C100.0239 (11)0.0279 (11)0.0378 (13)0.0025 (9)0.0016 (9)0.0061 (9)
C200.0305 (12)0.0221 (10)0.0284 (11)0.0003 (8)0.0023 (9)0.0029 (8)
C300.0265 (11)0.0286 (11)0.0237 (11)0.0003 (8)0.0025 (8)0.0015 (8)
C310.0260 (11)0.0316 (11)0.0321 (12)0.0023 (9)0.0064 (9)0.0016 (9)
C10.0275 (11)0.0285 (11)0.0223 (10)0.0025 (8)0.0021 (8)0.0002 (8)
C350.0235 (11)0.0346 (12)0.0322 (12)0.0021 (9)0.0035 (9)0.0043 (9)
C370.0281 (11)0.0297 (11)0.0222 (10)0.0002 (9)0.0003 (8)0.0003 (8)
C170.0439 (14)0.0263 (11)0.0215 (11)0.0017 (9)0.0039 (9)0.0006 (8)
C270.0320 (12)0.0381 (13)0.0282 (12)0.0034 (10)0.0095 (10)0.0017 (9)
C280.0303 (12)0.0306 (11)0.0292 (12)0.0019 (9)0.0034 (9)0.0016 (9)
C140.0278 (12)0.0361 (12)0.0266 (11)0.0074 (9)0.0007 (9)0.0029 (9)
C60.0288 (12)0.0268 (11)0.0305 (12)0.0040 (9)0.0019 (9)0.0018 (9)
C70.0264 (11)0.0242 (10)0.0294 (11)0.0013 (8)0.0017 (9)0.0024 (8)
C230.0242 (11)0.0312 (11)0.0231 (10)0.0008 (8)0.0007 (8)0.0001 (8)
C30.0277 (11)0.0262 (11)0.0311 (12)0.0017 (9)0.0005 (9)0.0043 (9)
C50.0226 (11)0.0345 (12)0.0252 (11)0.0024 (9)0.0015 (8)0.0041 (9)
C190.0315 (12)0.0216 (10)0.0318 (12)0.0007 (8)0.0054 (9)0.0034 (8)
C120.0344 (12)0.0231 (10)0.0323 (12)0.0028 (9)0.0124 (10)0.0012 (9)
C420.0286 (12)0.0377 (12)0.0262 (11)0.0004 (9)0.0010 (9)0.0024 (9)
C400.0432 (14)0.0307 (12)0.0244 (11)0.0059 (10)0.0012 (10)0.0031 (9)
C320.0247 (11)0.0362 (12)0.0391 (13)0.0024 (9)0.0071 (10)0.0009 (10)
C240.0340 (13)0.0346 (12)0.0346 (13)0.0004 (10)0.0130 (10)0.0015 (10)
C110.0206 (11)0.0321 (12)0.0499 (15)0.0005 (9)0.0070 (10)0.0079 (10)
C260.0326 (13)0.0352 (12)0.0369 (13)0.0029 (10)0.0101 (10)0.0069 (10)
C410.0340 (13)0.0441 (14)0.0278 (12)0.0060 (10)0.0049 (10)0.0042 (10)
C130.0344 (13)0.0390 (13)0.0250 (11)0.0046 (10)0.0003 (9)0.0036 (9)
C40.0246 (11)0.0353 (12)0.0375 (13)0.0048 (9)0.0003 (9)0.0051 (10)
C250.0408 (14)0.0300 (12)0.0430 (14)0.0037 (10)0.0150 (11)0.0002 (10)
C180.0497 (15)0.0272 (11)0.0236 (11)0.0040 (10)0.0073 (10)0.0052 (9)
C340.0327 (13)0.0284 (12)0.0401 (13)0.0045 (9)0.0061 (10)0.0049 (10)
C390.0302 (13)0.0518 (15)0.0340 (13)0.0028 (11)0.0089 (10)0.0090 (11)
C80.0331 (13)0.0445 (14)0.0438 (15)0.0135 (11)0.0027 (11)0.0023 (11)
C330.0334 (13)0.0297 (11)0.0341 (12)0.0040 (9)0.0071 (10)0.0014 (9)
C380.0262 (12)0.0523 (15)0.0336 (13)0.0040 (11)0.0016 (10)0.0089 (11)
C220.075 (2)0.0218 (12)0.0534 (17)0.0066 (12)0.0040 (15)0.0028 (11)
C360.0533 (17)0.0376 (14)0.0404 (14)0.0094 (12)0.0093 (12)0.0029 (11)
C430.0539 (18)0.0620 (18)0.0322 (14)0.0033 (14)0.0113 (12)0.0105 (12)
C150.0382 (16)0.0577 (18)0.078 (2)0.0017 (13)0.0231 (15)0.0277 (16)
C290.117 (3)0.0375 (17)0.110 (3)0.0190 (19)0.077 (3)0.0246 (18)
Geometric parameters (Å, º) top
Ag1—P12.4625 (5)C14—H140.9500
Ag1—P22.4331 (6)C14—C131.380 (3)
Ag1—S1i2.6760 (6)C6—H60.9500
Ag1—N12.339 (2)C6—C71.388 (3)
P1—C91.827 (2)C6—C51.386 (3)
P1—C161.815 (2)C7—H70.9500
P1—C21.816 (2)C23—C241.394 (3)
P2—C301.822 (2)C3—H30.9500
P2—C371.823 (2)C3—C41.386 (3)
P2—C231.823 (2)C5—C41.393 (3)
S1—Ag1ii2.6760 (6)C19—C181.394 (3)
S1—C11.650 (2)C12—C111.386 (3)
O2—C121.368 (3)C12—C131.384 (3)
O2—C151.415 (3)C42—H420.9500
O1—C51.371 (3)C42—C411.382 (3)
O1—C81.428 (3)C40—C411.379 (3)
O6—C401.370 (3)C40—C391.385 (3)
O6—C431.425 (3)C32—H320.9500
O3—C191.362 (3)C32—C331.398 (3)
O3—C221.429 (3)C24—H240.9500
O4—C261.374 (3)C24—C251.382 (3)
O4—C291.434 (4)C11—H110.9500
O5—C331.376 (3)C26—C251.388 (3)
O5—C361.427 (3)C41—H410.9500
N1—C11.153 (3)C13—H130.9500
C9—C101.387 (3)C4—H40.9500
C9—C141.398 (3)C25—H250.9500
C16—C211.392 (3)C18—H180.9500
C16—C171.396 (3)C34—H340.9500
C21—H210.9500C34—C331.386 (3)
C21—C201.390 (3)C39—H390.9500
C2—C71.394 (3)C39—C381.394 (3)
C2—C31.390 (3)C8—H8A0.9800
C10—H100.9500C8—H8B0.9800
C10—C111.395 (3)C8—H8C0.9800
C20—H200.9500C38—H380.9500
C20—C191.386 (3)C22—H22A0.9800
C30—C311.403 (3)C22—H22B0.9800
C30—C351.396 (3)C22—H22C0.9800
C31—H310.9500C36—H36A0.9800
C31—C321.386 (3)C36—H36B0.9800
C35—H350.9500C36—H36C0.9800
C35—C341.386 (3)C43—H43A0.9800
C37—C421.400 (3)C43—H43B0.9800
C37—C381.384 (3)C43—H43C0.9800
C17—H170.9500C15—H15A0.9800
C17—C181.383 (3)C15—H15B0.9800
C27—H270.9500C15—H15C0.9800
C27—C281.388 (3)C29—H29A0.9800
C27—C261.390 (3)C29—H29B0.9800
C28—H280.9500C29—H29C0.9800
C28—C231.401 (3)
P1—Ag1—S1i95.31 (2)C20—C19—C18120.0 (2)
P2—Ag1—P1129.610 (19)O2—C12—C11125.3 (2)
P2—Ag1—S1i127.04 (2)O2—C12—C13115.2 (2)
N1—Ag1—P1106.44 (6)C13—C12—C11119.6 (2)
N1—Ag1—P2102.35 (6)C37—C42—H42119.6
N1—Ag1—S1i86.75 (6)C41—C42—C37120.8 (2)
C9—P1—Ag1121.67 (7)C41—C42—H42119.6
C16—P1—Ag1111.65 (7)O6—C40—C41115.5 (2)
C16—P1—C9104.48 (9)O6—C40—C39124.4 (2)
C16—P1—C2107.05 (10)C41—C40—C39120.1 (2)
C2—P1—Ag1109.31 (7)C31—C32—H32120.0
C2—P1—C9101.46 (9)C31—C32—C33120.0 (2)
C30—P2—Ag1121.79 (7)C33—C32—H32120.0
C30—P2—C37103.21 (10)C23—C24—H24119.0
C30—P2—C23108.24 (10)C25—C24—C23121.9 (2)
C37—P2—Ag1114.53 (7)C25—C24—H24119.0
C23—P2—Ag1104.33 (7)C10—C11—H11120.3
C23—P2—C37103.22 (10)C12—C11—C10119.4 (2)
C1—S1—Ag1ii105.72 (8)C12—C11—H11120.3
C12—O2—C15118.0 (2)O4—C26—C27116.3 (2)
C5—O1—C8116.38 (19)O4—C26—C25123.8 (2)
C40—O6—C43116.9 (2)C25—C26—C27119.9 (2)
C19—O3—C22116.61 (19)C42—C41—H41119.9
C26—O4—C29117.0 (2)C40—C41—C42120.2 (2)
C33—O5—C36116.38 (19)C40—C41—H41119.9
C1—N1—Ag1158.6 (2)C14—C13—C12120.7 (2)
C10—C9—P1120.35 (17)C14—C13—H13119.7
C10—C9—C14117.9 (2)C12—C13—H13119.7
C14—C9—P1121.73 (16)C3—C4—C5120.4 (2)
C21—C16—P1118.19 (15)C3—C4—H4119.8
C21—C16—C17118.06 (19)C5—C4—H4119.8
C17—C16—P1123.61 (16)C24—C25—C26119.4 (2)
C16—C21—H21119.0C24—C25—H25120.3
C20—C21—C16122.0 (2)C26—C25—H25120.3
C20—C21—H21119.0C17—C18—C19120.3 (2)
C7—C2—P1115.70 (16)C17—C18—H18119.8
C3—C2—P1125.74 (16)C19—C18—H18119.8
C3—C2—C7118.5 (2)C35—C34—H34120.3
C9—C10—H10119.2C33—C34—C35119.4 (2)
C9—C10—C11121.6 (2)C33—C34—H34120.3
C11—C10—H10119.2C40—C39—H39120.3
C21—C20—H20120.5C40—C39—C38119.5 (2)
C19—C20—C21119.0 (2)C38—C39—H39120.3
C19—C20—H20120.5O1—C8—H8A109.5
C31—C30—P2124.50 (17)O1—C8—H8B109.5
C35—C30—P2117.20 (17)O1—C8—H8C109.5
C35—C30—C31117.9 (2)H8A—C8—H8B109.5
C30—C31—H31119.6H8A—C8—H8C109.5
C32—C31—C30120.8 (2)H8B—C8—H8C109.5
C32—C31—H31119.6O5—C33—C32116.1 (2)
N1—C1—S1179.3 (2)O5—C33—C34123.8 (2)
C30—C35—H35119.1C34—C33—C32120.0 (2)
C34—C35—C30121.9 (2)C37—C38—C39121.2 (2)
C34—C35—H35119.1C37—C38—H38119.4
C42—C37—P2118.66 (17)C39—C38—H38119.4
C38—C37—P2123.10 (18)O3—C22—H22A109.5
C38—C37—C42118.2 (2)O3—C22—H22B109.5
C16—C17—H17119.7O3—C22—H22C109.5
C18—C17—C16120.7 (2)H22A—C22—H22B109.5
C18—C17—H17119.7H22A—C22—H22C109.5
C28—C27—H27119.8H22B—C22—H22C109.5
C28—C27—C26120.3 (2)O5—C36—H36A109.5
C26—C27—H27119.8O5—C36—H36B109.5
C27—C28—H28119.8O5—C36—H36C109.5
C27—C28—C23120.4 (2)H36A—C36—H36B109.5
C23—C28—H28119.8H36A—C36—H36C109.5
C9—C14—H14119.6H36B—C36—H36C109.5
C13—C14—C9120.9 (2)O6—C43—H43A109.5
C13—C14—H14119.6O6—C43—H43B109.5
C7—C6—H6120.3O6—C43—H43C109.5
C5—C6—H6120.3H43A—C43—H43B109.5
C5—C6—C7119.3 (2)H43A—C43—H43C109.5
C2—C7—H7119.2H43B—C43—H43C109.5
C6—C7—C2121.5 (2)O2—C15—H15A109.5
C6—C7—H7119.2O2—C15—H15B109.5
C28—C23—P2124.36 (17)O2—C15—H15C109.5
C24—C23—P2116.67 (17)H15A—C15—H15B109.5
C24—C23—C28118.0 (2)H15A—C15—H15C109.5
C2—C3—H3119.8H15B—C15—H15C109.5
C4—C3—C2120.4 (2)O4—C29—H29A109.5
C4—C3—H3119.8O4—C29—H29B109.5
O1—C5—C6123.8 (2)O4—C29—H29C109.5
O1—C5—C4116.4 (2)H29A—C29—H29B109.5
C6—C5—C4119.8 (2)H29A—C29—H29C109.5
O3—C19—C20124.3 (2)H29B—C29—H29C109.5
O3—C19—C18115.7 (2)
Ag1—P1—C9—C1028.5 (2)C30—P2—C23—C2833.6 (2)
Ag1—P1—C9—C14149.20 (16)C30—P2—C23—C24157.73 (18)
Ag1—P1—C16—C2113.67 (19)C30—C31—C32—C331.2 (4)
Ag1—P1—C16—C17162.10 (17)C30—C35—C34—C330.5 (4)
Ag1—P1—C2—C750.10 (17)C31—C30—C35—C341.9 (3)
Ag1—P1—C2—C3131.66 (18)C31—C32—C33—O5179.0 (2)
Ag1—P2—C30—C31153.94 (16)C31—C32—C33—C342.6 (4)
Ag1—P2—C30—C3533.7 (2)C35—C30—C31—C321.0 (3)
Ag1—P2—C37—C4210.2 (2)C35—C34—C33—O5179.9 (2)
Ag1—P2—C37—C38170.20 (18)C35—C34—C33—C321.7 (4)
Ag1—P2—C23—C2897.42 (19)C37—P2—C30—C3175.7 (2)
Ag1—P2—C23—C2471.23 (18)C37—P2—C30—C3596.58 (19)
P1—C9—C10—C11177.81 (18)C37—P2—C23—C28142.57 (19)
P1—C9—C14—C13177.14 (18)C37—P2—C23—C2448.8 (2)
P1—C16—C21—C20175.26 (17)C37—C42—C41—C400.1 (4)
P1—C16—C17—C18175.03 (19)C17—C16—C21—C200.8 (3)
P1—C2—C7—C6176.52 (17)C27—C28—C23—P2168.70 (18)
P1—C2—C3—C4177.41 (18)C27—C28—C23—C240.2 (3)
P2—C30—C31—C32171.27 (18)C27—C26—C25—C240.6 (4)
P2—C30—C35—C34170.95 (18)C28—C27—C26—O4178.9 (2)
P2—C37—C42—C41178.45 (19)C28—C27—C26—C250.7 (4)
P2—C37—C38—C39178.1 (2)C28—C23—C24—C250.1 (4)
P2—C23—C24—C25169.5 (2)C14—C9—C10—C110.0 (3)
O2—C12—C11—C10178.6 (2)C6—C5—C4—C31.6 (3)
O2—C12—C13—C14179.3 (2)C7—C2—C3—C40.8 (3)
O1—C5—C4—C3179.5 (2)C7—C6—C5—O1179.4 (2)
O6—C40—C41—C42179.5 (2)C7—C6—C5—C40.5 (3)
O6—C40—C39—C38179.8 (2)C23—P2—C30—C3133.2 (2)
O3—C19—C18—C17179.5 (2)C23—P2—C30—C35154.46 (17)
O4—C26—C25—C24179.0 (2)C23—P2—C37—C42123.00 (19)
C9—P1—C16—C21146.98 (17)C23—P2—C37—C3857.4 (2)
C9—P1—C16—C1728.8 (2)C23—C24—C25—C260.3 (4)
C9—P1—C2—C779.59 (17)C3—C2—C7—C61.9 (3)
C9—P1—C2—C398.6 (2)C5—C6—C7—C21.2 (3)
C9—C10—C11—C120.8 (4)C42—C37—C38—C391.5 (4)
C9—C14—C13—C120.4 (4)C40—C39—C38—C370.8 (4)
C16—P1—C9—C1098.89 (19)C11—C12—C13—C140.4 (4)
C16—P1—C9—C1483.42 (19)C26—C27—C28—C230.5 (4)
C16—P1—C2—C7171.19 (16)C41—C40—C39—C380.3 (4)
C16—P1—C2—C310.6 (2)C13—C12—C11—C101.0 (3)
C16—C21—C20—C190.0 (3)C39—C40—C41—C420.7 (4)
C16—C17—C18—C190.0 (4)C8—O1—C5—C64.8 (3)
C21—C16—C17—C180.7 (3)C8—O1—C5—C4176.3 (2)
C21—C20—C19—O3179.6 (2)C38—C37—C42—C411.1 (4)
C21—C20—C19—C180.7 (3)C22—O3—C19—C208.1 (3)
C2—P1—C9—C10149.92 (18)C22—O3—C19—C18171.6 (2)
C2—P1—C9—C1427.8 (2)C36—O5—C33—C32145.4 (2)
C2—P1—C16—C21105.92 (18)C36—O5—C33—C3436.2 (3)
C2—P1—C16—C1778.3 (2)C43—O6—C40—C41168.2 (2)
C2—C3—C4—C50.9 (4)C43—O6—C40—C3911.9 (4)
C10—C9—C14—C130.6 (3)C15—O2—C12—C116.4 (3)
C20—C19—C18—C170.8 (4)C15—O2—C12—C13174.0 (2)
C30—P2—C37—C42124.33 (19)C29—O4—C26—C27177.3 (3)
C30—P2—C37—C3855.2 (2)C29—O4—C26—C252.4 (4)
Symmetry codes: (i) x+3/2, y+1/2, z+1/2; (ii) x+3/2, y1/2, z+1/2.
Hydrogen-bond geometry (Å, º) top
D—H···AD—HH···AD···AD—H···A
C20—H20···S1iii0.952.853.765 (2)162
C31—H31···O5iv0.952.553.436 (3)155
C7—H7···N10.952.623.457 (3)148
C18—H18···O4v0.952.583.313 (3)134
C34—H34···S1iii0.953.023.874 (3)150
C8—H8C···O4vi0.982.563.505 (3)163
C36—H36A···O1i0.982.643.588 (3)164
Symmetry codes: (i) x+3/2, y+1/2, z+1/2; (iii) x, y+1, z; (iv) x+1/2, y1/2, z+1/2; (v) x+1, y+1, z+1; (vi) x+1, y, z.
 

Funding information

We would like to acknowledge the National Research Foundation (NRF, SA; grant No. 138280 to FPM), the University of Pretoria and the University of Johannesburg for funding provided.

References

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