research communications
H-1,2,4-triazol-3-yl)phenylamine difluorophosphate, and a survey of the difluorophosphate anion (PO2F2−)
of (1,4-diphenyl-4aInstitute for Chemical Technologies and Analytics, Division of Structural Chemistry, TU Wien, Getreidemarkt 9/164-SC, A-1060 Vienna, Austria
*Correspondence e-mail: Matthias.Weil@tuwien.ac.at
Nitron is the H-1,2,4-triazol-3-yl)phenylamine (C20H16N4), a triazole derivative used as an analytical reagent for gravimetric analysis of the nitrate anion. The of the difluorophosphate salt of Nitron, 3-anilino-1,4-diphenyl-1H-1,2,4-triazol-4-ium difluorophosphate, C20H17N4+·PO2F2−, is reported here. Within the protonated Nitron molecule, the triazole ring, one of the phenyl rings and the NHPh moiety are virtually co-planar, with the third phenyl ring inclined to the least-squares plane of the other three rings by 56.07 (3)°. Intermolecular N—H⋯O and C—H⋯O hydrogen bonds between cations and difluorophosphate anions lead to the formation of a three-dimensional network that is consolidated by additional π–π stacking interactions between the triazole ring and one of the phenyl rings. Database surveys on inorganic, metal–organic and organic structures comprising the tetrahedral PO2F2 group reveal mean bond lengths of P—O = 1.459 (27) Å, P—F = 1.530 (21) Å, and angles of O—P—O = 121.2 (2.9)°, O—P—F = 108.7 (6)°, and F—P—F = 98.5 (2.6)°, using a dataset of 67 independent PO2F2− anions or PO2F2 entities.
of (1,4-diphenyl-4Keywords: crystal structure; Busch's reagent; PO2F2− anion; hydrogen bonding; NHC carbene.
CCDC reference: 2005191
1. Chemical context
Nitron is the H-1,2,4-triazol-3-yl)phenylamine, C20H16N4, that shows and can be present in its zwitterionic form (I) or its NHC-type carbenic form (II) (Fig. 1). Nitron has been utilized as a reagent for gravimetric analysis of the nitrate anion (`Busch's reagent'; Busch, 1905) from slightly acidic solutions under formation of the salt C20H17N4+·NO3−. In recent years, inexpensive Nitron was rediscovered as a stable N-heterocyclic carbene (Färber et al., 2012) that can be reacted with several coinage or other noble metals to yield corresponding metal complexes (Hitzel et al., 2014; Thie et al., 2016). The Nitron salt of difluorophosphoric acid, C20H17N4+·PO2F2− (III) was reported by Lange more than 90 years ago (Lange, 1929). It can be used as a precursor for obtaining difluorophosphates of several metals or other cations through metathesis reactions.
for the triazole derivative (1,4-diphenyl-4The synthesis, crystallization and structure analysis of III are reported here, together with a survey of the structural characteristics of the difluorophosphate anion present in inorganic, metal–organic and organic compounds.
2. Structural commentary
The III is composed of a Nitron molecule protonated at the C1 atom of the triazole ring, assuming the NHC-type tautomer II to be prevalent in Nitron itself, and a PO2F2− anion (Fig. 2).
ofThe central triazole ring (C1, C2, N1–N3), the phenyl ring attached to N2 (C9–C14) and the NHPh moiety attached to C2 (N4, C15–C20) are virtually co-planar with the r.m.s. deviation of the 18 non-H atoms being 0.0666 Å [greatest deviation 0.1250 (13) Å for the phenyl C19 atom]. The third phenyl ring (C3–C8) is inclined to the least-squares plane of the three aforementioned rings by 56.07 (3)° (Fig. 2). A weak intramolecular hydrogen bond between a phenyl C—H group (C16—H16) and the free N atom (N1) of the triazole cycle stabilizes the conformation of the molecule (Table 1).
In III, the tetrahedral difluorophosphate anion shows the characteristic bond lengths distribution (Table 2) between two shorter P—O bonds (mean 1.468 Å) and two considerably longer P—F bonds (mean 1.554 Å). The distortion of the anion is evident not only by the two pairs of different bond lengths but even more so by the bond angles that partly deviate considerably from the ideal value of 109.47°. Whereas the O1—P—O2 angle is enlarged by about 14° relative to the ideal value, the F1—P—F2 angle is reduced by about 12°; the four O—P—F angles are rather similar, with a mean of 108.3°.
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3. Supramolecular features
Aside from Coulombic interactions, the cation is hydrogen-bonded by an N—H⋯O interaction of medium strength between the amino group (N4) of the NHPh moiety and one of the O atoms (O2) of the difluorophosphate anion. The other O atom (O1) of the anion is the acceptor atom of a weak C—H⋯O hydrogen bond with the protonated carbene C1 atom as the donor group. F atoms are not involved in hydrogen bonding, as frequently observed for related compounds containing the monofluorophosphate anion PO3F2– (Weil et al., 2015). The two types of hydrogen-bonding interactions link the cations and anions into a three-dimensional network structure. Additional π–π stacking between the triazole ring (Cg1) and the phenyl ring C15–C20 (Cg2) with a centroid-to-centroid distance of Cg1⋯Cg2(2 − x, 1 − y, 1 − z) = 3.5378 (9) Å and a slippage of 0.643 Å consolidates the packing (Fig. 3).
4. Database survey
A search of the Cambridge Structural Database (CSD; Version 5.41, last update November 2019; Groom et al., 2016) for Nitron revealed 17 hits, including various coinage metal complexes of Nitron (EJEZOK, EJICEH, EJICOR, EJIPOE, EJIPUK, EJIQAR, EJIQEV, EJIXOM; Thie et al., 2016), with selenium bonded to the carbene C atom (EJICIL; Thie et al., 2016), rhodium complexes (NITLAF, NITLUZ, SAKNAV, SAKNEZ; Hitzel et al., 2014, Färber et al., 2012), with a carbodithioate group attached (SAKNID; Färber et al., 2012), and isotypic ethylenediaminotetra-acetatoaluminate and -gallate complexes (FADJIE, FADJUQ; Ilyukhin & Petrosyant, 2001). The structure of the hydrochloride methanol solvate of Nitron (NITLEJ; Hitzel et al., 2014) is the most similar in comparison to I because it shows no direct coordination to a metal and is not derivatized. In (Nitron)+Cl−· CH3OH, the central triazole ring is co-planar with only one phenyl ring (attached to N2). The second phenyl ring (attached to N3) and the NHPh moiety (attached to C2) are inclined to the mean plane by 48.13 (7) and 31.42 (6)°, respectively. The chloride anion is hydrogen-bonded through N—H⋯Cl and O—H⋯Cl interactions to the protonated Nitron molecule and the methanol solvent molecule, respectively. In all structures comprising Nitron, the N atom (equivalent to N4 in the title structure) is protonated like in II.
A search of the Inorganic et al., 2019) and the CSD for the difluorophosphate anion or the PO2F2 entity revealed the crystal structures of twelve inorganic and 30 metal–organic or organic compounds (Table 3). For a statistical analysis of bond lengths and angles within a PO2F2 tetrahedron, only ordered PO2F2 groups were considered. In summary, 67 independent PO2F2 tetrahedra were used, leading to the following averaged bond lengths and angles: P—O = 1.459 (27) Å, P—F = 1.530 (21) Å; O—P—O = 121.2 (2.9)°, O—P—F = 108.7 (6)°, F—P—F = 98.5 (2.6)°. It is evident that the bond lengths and angles observed in III (Table 2) fall within these limits.
Database (ICSD; Zagorac
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5. Synthesis and crystallization
In a nickel crucible, P2O5 (2.67 g) and NH4F (1.86 g) were thoroughly mixed. The open crucible was placed on a hot plate (≃ 420 K) where a vehement reaction took place within a few seconds. The crucible was then taken from the plate and cooled to room temperature. The obtained solid was dissolved in 50 ml water to which ammonia solution (25%wt) was added until neutralisation. Subsequently, the pH was adjusted to ca. 5 with a few drops of glacial acetic acid. Nitron (3 g) was then added in small portions to the cooled (273 K) acetic solution under constant stirring for about two h. The formed solid was separated by suction filtration and recrystallized from diluted acetic acid solution. Storing the solution in a refrigerator at 280 K overnight resulted in the formation of light-brown crystals of the title compound with a rod-like form; yield 60%.
6. Refinement
Crystal data, data collection and structure . The H atom attached to N1 was discernible in a difference-Fourier map and was refined freely.
details are summarized in Table 4
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Supporting information
CCDC reference: 2005191
https://doi.org/10.1107/S2056989020006933/pk2629sup1.cif
contains datablock I. DOI:Structure factors: contains datablock I. DOI: https://doi.org/10.1107/S2056989020006933/pk2629Isup2.hkl
Supplementary material: Averaged bond lengths and angles in PO2F2 anions or PO2F2 entities present in metal-organic and organic compounds. DOI: https://doi.org/10.1107/S2056989020006933/pk2629sup3.pdf
Data collection: APEX2 (Bruker, 2016); cell
SAINT (Bruker, 2016); data reduction: SAINT (Bruker, 2016); program(s) used to solve structure: SHELXT (Sheldrick, 2015a); program(s) used to refine structure: SHELXL (Sheldrick, 2015b); molecular graphics: Mercury (Macrae et al., 2020); software used to prepare material for publication: publCIF (Westrip, 2010).C20H17N4+·PO2F2− | F(000) = 856 |
Mr = 414.35 | Dx = 1.503 Mg m−3 |
Monoclinic, P21/n | Mo Kα radiation, λ = 0.71073 Å |
a = 7.3811 (5) Å | Cell parameters from 7088 reflections |
b = 14.9963 (9) Å | θ = 2.5–29.9° |
c = 16.9217 (10) Å | µ = 0.20 mm−1 |
β = 102.138 (2)° | T = 100 K |
V = 1831.2 (2) Å3 | Bar, light-brown |
Z = 4 | 0.50 × 0.10 × 0.10 mm |
Bruker APEXII CCD diffractometer | 4077 reflections with I > 2σ(I) |
ω– and f–scans | Rint = 0.046 |
Absorption correction: multi-scan (SADABS; Krause et al., 2015) | θmax = 30.0°, θmin = 2.5° |
Tmin = 0.701, Tmax = 0.746 | h = −10→10 |
30253 measured reflections | k = −21→21 |
5325 independent reflections | l = −23→23 |
Refinement on F2 | 0 restraints |
Least-squares matrix: full | Hydrogen site location: mixed |
R[F2 > 2σ(F2)] = 0.039 | H atoms treated by a mixture of independent and constrained refinement |
wR(F2) = 0.100 | w = 1/[σ2(Fo2) + (0.0405P)2 + 0.7893P] where P = (Fo2 + 2Fc2)/3 |
S = 1.03 | (Δ/σ)max = 0.001 |
5325 reflections | Δρmax = 0.38 e Å−3 |
266 parameters | Δρmin = −0.36 e Å−3 |
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. |
x | y | z | Uiso*/Ueq | ||
P1 | 0.92663 (5) | 0.62394 (2) | 0.23419 (2) | 0.01781 (9) | |
F1 | 1.02420 (15) | 0.53730 (7) | 0.27209 (7) | 0.0427 (3) | |
F2 | 0.82504 (15) | 0.58249 (8) | 0.15294 (6) | 0.0399 (3) | |
O1 | 1.06913 (14) | 0.68482 (7) | 0.21683 (6) | 0.0215 (2) | |
O2 | 0.78943 (15) | 0.65005 (7) | 0.28139 (6) | 0.0256 (2) | |
N1 | 0.67953 (16) | 0.42442 (7) | 0.49191 (7) | 0.0167 (2) | |
N2 | 0.60128 (16) | 0.34410 (7) | 0.46219 (7) | 0.0159 (2) | |
N3 | 0.59412 (16) | 0.42525 (7) | 0.35731 (7) | 0.0160 (2) | |
N4 | 0.74014 (17) | 0.55678 (8) | 0.42288 (7) | 0.0172 (2) | |
C1 | 0.55145 (19) | 0.34448 (9) | 0.38303 (8) | 0.0173 (3) | |
H1 | 0.495559 | 0.296572 | 0.349946 | 0.021* | |
C2 | 0.67538 (18) | 0.47308 (9) | 0.42636 (8) | 0.0154 (3) | |
C3 | 0.55076 (19) | 0.45013 (9) | 0.27301 (8) | 0.0164 (3) | |
C4 | 0.6100 (2) | 0.39458 (9) | 0.21783 (8) | 0.0192 (3) | |
H4 | 0.686529 | 0.344484 | 0.235566 | 0.023* | |
C5 | 0.5545 (2) | 0.41403 (10) | 0.13613 (8) | 0.0223 (3) | |
H5 | 0.592902 | 0.376766 | 0.097312 | 0.027* | |
C6 | 0.4434 (2) | 0.48749 (10) | 0.11080 (9) | 0.0234 (3) | |
H6 | 0.405364 | 0.500038 | 0.054732 | 0.028* | |
C7 | 0.3878 (2) | 0.54265 (10) | 0.16687 (9) | 0.0228 (3) | |
H7 | 0.313089 | 0.593352 | 0.149122 | 0.027* | |
C8 | 0.4405 (2) | 0.52423 (9) | 0.24886 (8) | 0.0201 (3) | |
H8 | 0.402026 | 0.561559 | 0.287605 | 0.024* | |
C9 | 0.58060 (18) | 0.27329 (9) | 0.51670 (8) | 0.0161 (3) | |
C10 | 0.4911 (2) | 0.19539 (9) | 0.48580 (8) | 0.0199 (3) | |
H10 | 0.445350 | 0.188499 | 0.429318 | 0.024* | |
C11 | 0.4701 (2) | 0.12795 (10) | 0.53908 (9) | 0.0221 (3) | |
H11 | 0.410626 | 0.073931 | 0.518867 | 0.027* | |
C12 | 0.5349 (2) | 0.13848 (10) | 0.62172 (9) | 0.0221 (3) | |
H12 | 0.517537 | 0.092364 | 0.657898 | 0.026* | |
C13 | 0.6250 (2) | 0.21647 (10) | 0.65123 (9) | 0.0242 (3) | |
H13 | 0.670021 | 0.223552 | 0.707742 | 0.029* | |
C14 | 0.6498 (2) | 0.28444 (10) | 0.59862 (8) | 0.0210 (3) | |
H14 | 0.713296 | 0.337592 | 0.618605 | 0.025* | |
C15 | 0.82708 (19) | 0.60945 (9) | 0.48991 (8) | 0.0162 (3) | |
C16 | 0.8404 (2) | 0.58403 (9) | 0.57031 (8) | 0.0200 (3) | |
H16 | 0.792304 | 0.528252 | 0.582833 | 0.024* | |
C17 | 0.9249 (2) | 0.64124 (10) | 0.63198 (9) | 0.0226 (3) | |
H17 | 0.933453 | 0.623820 | 0.686619 | 0.027* | |
C18 | 0.9968 (2) | 0.72284 (9) | 0.61568 (9) | 0.0214 (3) | |
H18 | 1.052684 | 0.761540 | 0.658329 | 0.026* | |
C19 | 0.9854 (2) | 0.74688 (10) | 0.53521 (9) | 0.0211 (3) | |
H19 | 1.036019 | 0.802151 | 0.522932 | 0.025* | |
C20 | 0.9009 (2) | 0.69113 (9) | 0.47280 (8) | 0.0198 (3) | |
H20 | 0.893375 | 0.708627 | 0.418243 | 0.024* | |
H1N | 0.741 (3) | 0.5776 (12) | 0.3758 (11) | 0.031 (5)* |
U11 | U22 | U33 | U12 | U13 | U23 | |
P1 | 0.02253 (19) | 0.01490 (16) | 0.01649 (17) | −0.00094 (14) | 0.00522 (14) | 0.00142 (13) |
F1 | 0.0456 (6) | 0.0255 (5) | 0.0631 (7) | 0.0121 (5) | 0.0255 (6) | 0.0221 (5) |
F2 | 0.0414 (6) | 0.0531 (7) | 0.0280 (5) | −0.0244 (5) | 0.0132 (4) | −0.0184 (5) |
O1 | 0.0245 (5) | 0.0200 (5) | 0.0200 (5) | −0.0034 (4) | 0.0045 (4) | 0.0023 (4) |
O2 | 0.0291 (6) | 0.0270 (6) | 0.0231 (5) | 0.0005 (5) | 0.0110 (5) | 0.0005 (4) |
N1 | 0.0190 (6) | 0.0140 (5) | 0.0175 (5) | −0.0006 (4) | 0.0049 (5) | −0.0010 (4) |
N2 | 0.0175 (6) | 0.0137 (5) | 0.0169 (5) | 0.0000 (4) | 0.0043 (4) | −0.0015 (4) |
N3 | 0.0184 (6) | 0.0155 (5) | 0.0144 (5) | 0.0009 (4) | 0.0040 (4) | −0.0012 (4) |
N4 | 0.0225 (6) | 0.0151 (5) | 0.0147 (5) | −0.0011 (5) | 0.0056 (5) | 0.0001 (4) |
C1 | 0.0187 (6) | 0.0160 (6) | 0.0178 (6) | 0.0007 (5) | 0.0049 (5) | −0.0010 (5) |
C2 | 0.0151 (6) | 0.0168 (6) | 0.0148 (6) | 0.0020 (5) | 0.0044 (5) | −0.0019 (5) |
C3 | 0.0173 (6) | 0.0173 (6) | 0.0145 (6) | −0.0011 (5) | 0.0033 (5) | 0.0008 (5) |
C4 | 0.0216 (7) | 0.0184 (6) | 0.0178 (6) | 0.0015 (5) | 0.0049 (5) | −0.0010 (5) |
C5 | 0.0253 (7) | 0.0255 (7) | 0.0170 (6) | −0.0019 (6) | 0.0066 (6) | −0.0028 (5) |
C6 | 0.0222 (7) | 0.0305 (8) | 0.0168 (6) | −0.0036 (6) | 0.0025 (6) | 0.0034 (6) |
C7 | 0.0198 (7) | 0.0235 (7) | 0.0239 (7) | 0.0033 (6) | 0.0020 (6) | 0.0063 (6) |
C8 | 0.0203 (7) | 0.0195 (7) | 0.0208 (7) | 0.0020 (5) | 0.0054 (6) | −0.0015 (5) |
C9 | 0.0160 (6) | 0.0149 (6) | 0.0184 (6) | 0.0011 (5) | 0.0064 (5) | 0.0015 (5) |
C10 | 0.0232 (7) | 0.0191 (7) | 0.0174 (6) | −0.0025 (5) | 0.0045 (5) | −0.0016 (5) |
C11 | 0.0242 (7) | 0.0184 (7) | 0.0243 (7) | −0.0033 (6) | 0.0062 (6) | −0.0017 (5) |
C12 | 0.0235 (7) | 0.0209 (7) | 0.0221 (7) | −0.0018 (6) | 0.0057 (6) | 0.0052 (5) |
C13 | 0.0289 (8) | 0.0243 (7) | 0.0184 (7) | −0.0047 (6) | 0.0026 (6) | 0.0012 (5) |
C14 | 0.0255 (7) | 0.0183 (7) | 0.0188 (7) | −0.0041 (6) | 0.0038 (6) | −0.0014 (5) |
C15 | 0.0152 (6) | 0.0157 (6) | 0.0179 (6) | 0.0022 (5) | 0.0037 (5) | −0.0019 (5) |
C16 | 0.0251 (7) | 0.0163 (6) | 0.0185 (6) | −0.0010 (6) | 0.0042 (6) | 0.0011 (5) |
C17 | 0.0287 (8) | 0.0201 (7) | 0.0180 (6) | 0.0005 (6) | 0.0027 (6) | 0.0004 (5) |
C18 | 0.0234 (7) | 0.0168 (6) | 0.0219 (7) | 0.0013 (6) | 0.0002 (6) | −0.0034 (5) |
C19 | 0.0225 (7) | 0.0149 (6) | 0.0256 (7) | −0.0012 (5) | 0.0044 (6) | 0.0001 (5) |
C20 | 0.0232 (7) | 0.0182 (6) | 0.0190 (7) | 0.0001 (5) | 0.0064 (6) | 0.0008 (5) |
P1—O1 | 1.4684 (11) | C7—H7 | 0.9500 |
P1—O2 | 1.4686 (11) | C8—H8 | 0.9500 |
P1—F2 | 1.5510 (10) | C9—C14 | 1.3832 (18) |
P1—F1 | 1.5568 (10) | C9—C10 | 1.3890 (19) |
N1—C2 | 1.3227 (17) | C10—C11 | 1.385 (2) |
N1—N2 | 1.3840 (15) | C10—H10 | 0.9500 |
N2—C1 | 1.3124 (17) | C11—C12 | 1.389 (2) |
N2—C9 | 1.4356 (17) | C11—H11 | 0.9500 |
N3—C1 | 1.3467 (17) | C12—C13 | 1.386 (2) |
N3—C2 | 1.3944 (16) | C12—H12 | 0.9500 |
N3—C3 | 1.4439 (16) | C13—C14 | 1.391 (2) |
N4—C2 | 1.3488 (17) | C13—H13 | 0.9500 |
N4—C15 | 1.4200 (17) | C14—H14 | 0.9500 |
N4—H1N | 0.857 (19) | C15—C20 | 1.3957 (19) |
C1—H1 | 0.9500 | C15—C16 | 1.3962 (18) |
C3—C8 | 1.3870 (19) | C16—C17 | 1.3930 (19) |
C3—C4 | 1.3887 (19) | C16—H16 | 0.9500 |
C4—C5 | 1.3877 (19) | C17—C18 | 1.385 (2) |
C4—H4 | 0.9500 | C17—H17 | 0.9500 |
C5—C6 | 1.386 (2) | C18—C19 | 1.394 (2) |
C5—H5 | 0.9500 | C18—H18 | 0.9500 |
C6—C7 | 1.385 (2) | C19—C20 | 1.3878 (19) |
C6—H6 | 0.9500 | C19—H19 | 0.9500 |
C7—C8 | 1.3877 (19) | C20—H20 | 0.9500 |
O1—P1—O2 | 123.22 (6) | C3—C8—H8 | 120.7 |
O1—P1—F2 | 107.75 (6) | C7—C8—H8 | 120.7 |
O2—P1—F2 | 109.20 (6) | C14—C9—C10 | 121.68 (13) |
O1—P1—F1 | 108.21 (6) | C14—C9—N2 | 119.20 (12) |
O2—P1—F1 | 108.10 (6) | C10—C9—N2 | 119.12 (12) |
F2—P1—F1 | 97.26 (7) | C11—C10—C9 | 118.60 (13) |
C2—N1—N2 | 103.95 (10) | C11—C10—H10 | 120.7 |
C1—N2—N1 | 111.91 (11) | C9—C10—H10 | 120.7 |
C1—N2—C9 | 127.89 (12) | C10—C11—C12 | 120.69 (14) |
N1—N2—C9 | 120.19 (11) | C10—C11—H11 | 119.7 |
C1—N3—C2 | 106.29 (11) | C12—C11—H11 | 119.7 |
C1—N3—C3 | 122.23 (11) | C13—C12—C11 | 119.78 (13) |
C2—N3—C3 | 131.44 (11) | C13—C12—H12 | 120.1 |
C2—N4—C15 | 125.98 (12) | C11—C12—H12 | 120.1 |
C2—N4—H1N | 116.8 (12) | C12—C13—C14 | 120.39 (13) |
C15—N4—H1N | 116.7 (12) | C12—C13—H13 | 119.8 |
N2—C1—N3 | 107.41 (12) | C14—C13—H13 | 119.8 |
N2—C1—H1 | 126.3 | C9—C14—C13 | 118.84 (13) |
N3—C1—H1 | 126.3 | C9—C14—H14 | 120.6 |
N1—C2—N4 | 127.16 (12) | C13—C14—H14 | 120.6 |
N1—C2—N3 | 110.42 (11) | C20—C15—C16 | 119.42 (12) |
N4—C2—N3 | 122.41 (12) | C20—C15—N4 | 116.94 (12) |
C8—C3—C4 | 122.04 (13) | C16—C15—N4 | 123.64 (12) |
C8—C3—N3 | 119.51 (12) | C17—C16—C15 | 119.38 (13) |
C4—C3—N3 | 118.27 (12) | C17—C16—H16 | 120.3 |
C5—C4—C3 | 118.36 (13) | C15—C16—H16 | 120.3 |
C5—C4—H4 | 120.8 | C18—C17—C16 | 121.67 (13) |
C3—C4—H4 | 120.8 | C18—C17—H17 | 119.2 |
C6—C5—C4 | 120.43 (14) | C16—C17—H17 | 119.2 |
C6—C5—H5 | 119.8 | C17—C18—C19 | 118.44 (13) |
C4—C5—H5 | 119.8 | C17—C18—H18 | 120.8 |
C7—C6—C5 | 120.29 (13) | C19—C18—H18 | 120.8 |
C7—C6—H6 | 119.9 | C20—C19—C18 | 120.86 (13) |
C5—C6—H6 | 119.9 | C20—C19—H19 | 119.6 |
C6—C7—C8 | 120.31 (14) | C18—C19—H19 | 119.6 |
C6—C7—H7 | 119.8 | C19—C20—C15 | 120.22 (13) |
C8—C7—H7 | 119.8 | C19—C20—H20 | 119.9 |
C3—C8—C7 | 118.56 (13) | C15—C20—H20 | 119.9 |
D—H···A | D—H | H···A | D···A | D—H···A |
C1—H1···O1i | 0.95 | 2.02 | 2.9576 (17) | 168 |
C20—H20···O2 | 0.95 | 2.44 | 3.2291 (17) | 140 |
C16—H16···N1 | 0.95 | 2.22 | 2.8700 (18) | 124 |
C10—H10···O1i | 0.95 | 2.45 | 3.3673 (17) | 161 |
N4—H1N···O2 | 0.857 (19) | 2.025 (19) | 2.8614 (16) | 165.0 (17) |
Symmetry code: (i) −x+3/2, y−1/2, −z+1/2. |
Compound | Independent PO2F2 groups | P—O | P—F | O—P—O | O—P—F | F—P—F |
NH4PO2F2a | 1 | 1.457 | 1.541 | 118.7 | 109.5 | 98.6 |
KPO2F2b | 1 | 1.470 | 1.575 | 122.4 | 108.7 | 97.1 |
CsPO2F2c | 1 | 1.480 | 1.545 | 121.0 | 108.5 | 99.0 |
LiB(PO2F2)4d | 4 (1 disordered) | 1.483 | 1.520 | 119.7 | 108.6 | 100.5 |
AgPO2F2e | 3 | 1.459 | 1.511 | 119.9 | 108.1 | 103.3 |
AgI4AgII5(PO2F2)14e | 7 | 1.481 | 1.511 | 117.8 | 109.4 | 99.9 |
Cu(PO2F2)2f | 3 | 1.450 | 1.496 | 119.1 | 109.5 | 97.6 |
Cs2Fe2F3(PO3F)2(PO2F2)g | 1 | 1.512 | 1.555 | 117.8 | 108.2 | 106.2 |
KFe2(PO2F2)(PO3F)2F2g | 1 | 1.509 | 1.569 | 115.6 | 109.3 | 103.4 |
SbF4(PO2F2)h | 1 | 1.500 | 1.500 | 117.4 | 108.5 | 104.6 |
(NH4)Mn3(PO3F)2(PO2F2)F2i | 1 | 1.482 | 1.572 | 116.6 | 109.8 | 100.0 |
(NH4)Co3(PO3F)2(PO2F2)F2i | 1 | 1.486 | 1.554 | 114.9 | 110.1 | 100.8 |
Organic and metal–organic compoundsj | 42 | 1.449 | 1.532 | 122.3 | 108.5 | 97.5 |
(a) Harrison & Trotter (1969); (b) Harrison et al. (1966); (c) Trotter & Whitlow (1967); (d) Schulz et al. (2015); (e) Malinowski et al. (2015); (f) Begley et al. (1985); (g) Keates et al. (2013); (h) Schneider et al. (2001); (i) Jiang et al. (2020); (j) A detailed list of entries for these compounds is given in Table S1 of the supporting information. |
Acknowledgements
The X-ray centre of TU Wien is acknowledged for financial support and access to the single-crystal X-ray diffractometer.
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