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Crystalline N,N-dimethyl-n-tetradecylamine oxide has been prepared by reaction of liquid N,N-dimethyl-n-tetradecylamine with 70% H2O2 in the presence of CO2 as catalyst. The resulting soft low-melting solid was crystallized as the dihydrate, viz. C16H35NO·2H2O. The extended hydrocarbon chains pack in a parallel fashion, with the N-oxide ends of the molecules forming hydrogen bonds with the water molecules in hydrophilic layers. The N-O distance is 1.411 (3) Å.
Supporting information
CCDC reference: 205305
The title compound was prepared by reacting liquid tetradecyldimethylamine with 70% hydrogen peroxide in the presence of CO2 catalyst. A blanket of CO2 was maintained throughout the addition of the peroxide to the liquid amine. The amine oxidation process is strongly exothermic and the reaction temperature was regulated by the rate of peroxide addition (Elnagar, 2000). The resulting soft solid (m.p. 317 K) was crystallized from methyl ethyl ketone.
H atoms on C atoms were placed in calculated positions, with C—H distances in the range 0.98–0.99 Å, and thereafter treated as riding. A torsional parameter was refined for each methyl group. Water H atoms were located in difference maps, and their coordinates were refined (is this correct?), the O—H distance constrained. For H atoms, Uiso = 1.2Ueq of the attached atom (1.5 for methyl and water H atoms).
Data collection: COLLECT (Nonius, 2000); cell refinement: HKL SCALEPACK (Otwinowski & Minor, 1997); data reduction: HKL DENZO (Otwinowski & Minor, 1997) and SCALEPACK; program(s) used to solve structure: SIR97 (Altomare et al., 1999); program(s) used to refine structure: SHELXL97 (Sheldrick, 1997); molecular graphics: ORTEP-3 for Windows (Farrugia, 1997); software used to prepare material for publication: SHELXL97.
N,
N-dimethyl-n-tetradecylamine oxide
top
Crystal data top
C16H35NO·2H2O | F(000) = 664 |
Mr = 293.48 | Dx = 1.056 Mg m−3 |
Monoclinic, P21/c | Mo Kα radiation, λ = 0.71073 Å |
Hall symbol: -P 2ybc | Cell parameters from 3471 reflections |
a = 22.782 (8) Å | θ = 2.5–26.0° |
b = 8.110 (5) Å | µ = 0.07 mm−1 |
c = 9.995 (5) Å | T = 100 K |
β = 91.19 (2)° | Plate, colorless |
V = 1846.3 (16) Å3 | 0.48 × 0.17 × 0.03 mm |
Z = 4 | |
Data collection top
Nonius KappaCCD (with Oxford Cryostream cooler) diffractometer | 1746 reflections with I > 2σ(I) |
Radiation source: fine-focus sealed tube | Rint = 0.076 |
Graphite monochromator | θmax = 26.0°, θmin = 2.6° |
ω scans with κ offsets | h = −28→28 |
15919 measured reflections | k = −10→10 |
3508 independent reflections | l = −11→11 |
Refinement top
Refinement on F2 | Primary atom site location: structure-invariant direct methods |
Least-squares matrix: full | Secondary atom site location: difference Fourier map |
R[F2 > 2σ(F2)] = 0.086 | Hydrogen site location: inferred from neighbouring sites |
wR(F2) = 0.195 | H-atom parameters constrained |
S = 1.06 | w = 1/[σ2(Fo2) + (0.053P)2 + 1.8197P] where P = (Fo2 + 2Fc2)/3 |
3508 reflections | (Δ/σ)max = 0.004 |
196 parameters | Δρmax = 0.32 e Å−3 |
4 restraints | Δρmin = −0.20 e Å−3 |
Crystal data top
C16H35NO·2H2O | V = 1846.3 (16) Å3 |
Mr = 293.48 | Z = 4 |
Monoclinic, P21/c | Mo Kα radiation |
a = 22.782 (8) Å | µ = 0.07 mm−1 |
b = 8.110 (5) Å | T = 100 K |
c = 9.995 (5) Å | 0.48 × 0.17 × 0.03 mm |
β = 91.19 (2)° | |
Data collection top
Nonius KappaCCD (with Oxford Cryostream cooler) diffractometer | 1746 reflections with I > 2σ(I) |
15919 measured reflections | Rint = 0.076 |
3508 independent reflections | |
Refinement top
R[F2 > 2σ(F2)] = 0.086 | 4 restraints |
wR(F2) = 0.195 | H-atom parameters constrained |
S = 1.06 | Δρmax = 0.32 e Å−3 |
3508 reflections | Δρmin = −0.20 e Å−3 |
196 parameters | |
Special details top
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. |
Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2) top | x | y | z | Uiso*/Ueq | |
O1 | 0.91337 (10) | 0.6352 (3) | 0.16990 (19) | 0.0342 (6) | |
N1 | 0.89780 (12) | 0.6766 (3) | 0.3016 (2) | 0.0285 (7) | |
C1 | 0.83330 (14) | 0.6461 (5) | 0.3101 (3) | 0.0319 (9) | |
H1A | 0.8252 | 0.5332 | 0.2769 | 0.038* | |
H1B | 0.8129 | 0.7236 | 0.2484 | 0.038* | |
C2 | 0.80611 (14) | 0.6631 (5) | 0.4477 (3) | 0.0339 (9) | |
H2A | 0.8209 | 0.5744 | 0.5075 | 0.041* | |
H2B | 0.8173 | 0.7705 | 0.4878 | 0.041* | |
C3 | 0.73959 (14) | 0.6518 (5) | 0.4337 (3) | 0.0344 (9) | |
H3A | 0.7255 | 0.7439 | 0.3765 | 0.041* | |
H3B | 0.7294 | 0.5477 | 0.3871 | 0.041* | |
C4 | 0.70723 (14) | 0.6574 (5) | 0.5651 (3) | 0.0328 (9) | |
H4A | 0.7208 | 0.5644 | 0.6220 | 0.039* | |
H4B | 0.7176 | 0.7610 | 0.6124 | 0.039* | |
C5 | 0.64094 (14) | 0.6479 (5) | 0.5482 (3) | 0.0336 (9) | |
H5A | 0.6308 | 0.5453 | 0.4992 | 0.040* | |
H5B | 0.6275 | 0.7419 | 0.4922 | 0.040* | |
C6 | 0.60755 (14) | 0.6505 (5) | 0.6782 (3) | 0.0323 (9) | |
H6A | 0.6200 | 0.5546 | 0.7331 | 0.039* | |
H6B | 0.6184 | 0.7515 | 0.7284 | 0.039* | |
C7 | 0.54145 (14) | 0.6458 (5) | 0.6594 (3) | 0.0335 (9) | |
H7A | 0.5307 | 0.5454 | 0.6082 | 0.040* | |
H7B | 0.5291 | 0.7422 | 0.6049 | 0.040* | |
C8 | 0.50745 (14) | 0.6468 (5) | 0.7886 (3) | 0.0332 (9) | |
H8A | 0.5189 | 0.5485 | 0.8417 | 0.040* | |
H8B | 0.5191 | 0.7454 | 0.8411 | 0.040* | |
C9 | 0.44146 (14) | 0.6474 (5) | 0.7696 (3) | 0.0344 (9) | |
H9A | 0.4299 | 0.5492 | 0.7166 | 0.041* | |
H9B | 0.4301 | 0.7461 | 0.7169 | 0.041* | |
C10 | 0.40740 (14) | 0.6475 (5) | 0.8981 (3) | 0.0329 (9) | |
H10A | 0.4197 | 0.7443 | 0.9521 | 0.040* | |
H10B | 0.4181 | 0.5474 | 0.9498 | 0.040* | |
C11 | 0.34122 (14) | 0.6522 (5) | 0.8792 (3) | 0.0334 (9) | |
H11A | 0.3306 | 0.7524 | 0.8275 | 0.040* | |
H11B | 0.3289 | 0.5555 | 0.8251 | 0.040* | |
C12 | 0.30721 (14) | 0.6521 (5) | 1.0078 (3) | 0.0327 (9) | |
H12A | 0.3203 | 0.7472 | 1.0629 | 0.039* | |
H12B | 0.3171 | 0.5505 | 1.0584 | 0.039* | |
C13 | 0.24111 (14) | 0.6610 (5) | 0.9887 (3) | 0.0351 (9) | |
H13A | 0.2279 | 0.5653 | 0.9345 | 0.042* | |
H13B | 0.2312 | 0.7620 | 0.9374 | 0.042* | |
C14 | 0.20739 (15) | 0.6627 (5) | 1.1185 (3) | 0.0387 (10) | |
H14A | 0.2147 | 0.5596 | 1.1673 | 0.058* | |
H14B | 0.1653 | 0.6732 | 1.0982 | 0.058* | |
H14C | 0.2204 | 0.7562 | 1.1736 | 0.058* | |
C15 | 0.93178 (15) | 0.5730 (5) | 0.3988 (3) | 0.0357 (9) | |
H15A | 0.9215 | 0.4568 | 0.3854 | 0.054* | |
H15B | 0.9223 | 0.6060 | 0.4902 | 0.054* | |
H15C | 0.9739 | 0.5882 | 0.3849 | 0.054* | |
C16 | 0.91250 (15) | 0.8520 (4) | 0.3237 (3) | 0.0338 (9) | |
H16A | 0.9548 | 0.8683 | 0.3129 | 0.051* | |
H16B | 0.9017 | 0.8841 | 0.4145 | 0.051* | |
H16C | 0.8908 | 0.9201 | 0.2585 | 0.051* | |
O1W | 1.03069 (11) | 0.6873 (3) | 0.1416 (2) | 0.0406 (7) | |
H1W | 0.9922 | 0.674 | 0.146 | 0.061* | |
H2W | 1.0440 | 0.679 | 0.0607 | 0.061* | |
O2W | 0.91913 (12) | 0.3044 (4) | 0.1151 (2) | 0.0466 (8) | |
H3W | 0.9160 | 0.4099 | 0.132 | 0.070* | |
H4W | 0.9203 | 0.2420 | 0.187 | 0.070* | |
Atomic displacement parameters (Å2) top | U11 | U22 | U33 | U12 | U13 | U23 |
O1 | 0.0387 (14) | 0.0462 (17) | 0.0181 (12) | 0.0024 (13) | 0.0081 (10) | −0.0031 (11) |
N1 | 0.0320 (17) | 0.0320 (18) | 0.0217 (15) | 0.0022 (14) | 0.0031 (12) | −0.0023 (13) |
C1 | 0.031 (2) | 0.038 (2) | 0.0258 (18) | −0.0057 (18) | −0.0028 (14) | −0.0030 (16) |
C2 | 0.032 (2) | 0.050 (3) | 0.0203 (17) | −0.0034 (19) | 0.0032 (14) | −0.0031 (17) |
C3 | 0.031 (2) | 0.049 (3) | 0.0227 (18) | −0.0026 (19) | 0.0005 (14) | −0.0023 (17) |
C4 | 0.031 (2) | 0.042 (2) | 0.0244 (18) | 0.0005 (19) | 0.0008 (14) | −0.0034 (17) |
C5 | 0.029 (2) | 0.046 (2) | 0.0251 (18) | −0.0029 (19) | −0.0008 (15) | −0.0009 (17) |
C6 | 0.032 (2) | 0.043 (2) | 0.0223 (17) | 0.0004 (19) | 0.0011 (14) | 0.0014 (17) |
C7 | 0.030 (2) | 0.045 (2) | 0.0256 (18) | −0.0023 (19) | −0.0003 (14) | −0.0043 (17) |
C8 | 0.031 (2) | 0.045 (2) | 0.0231 (18) | 0.0031 (19) | 0.0016 (14) | 0.0004 (17) |
C9 | 0.033 (2) | 0.045 (3) | 0.0249 (18) | −0.0034 (19) | −0.0002 (15) | 0.0004 (18) |
C10 | 0.031 (2) | 0.045 (2) | 0.0224 (18) | −0.0010 (18) | 0.0003 (14) | −0.0005 (17) |
C11 | 0.029 (2) | 0.044 (2) | 0.0272 (18) | −0.0049 (19) | 0.0010 (14) | −0.0007 (17) |
C12 | 0.032 (2) | 0.043 (2) | 0.0231 (18) | −0.0007 (19) | 0.0013 (14) | 0.0007 (17) |
C13 | 0.031 (2) | 0.045 (2) | 0.0289 (19) | −0.0029 (19) | −0.0030 (15) | 0.0016 (18) |
C14 | 0.036 (2) | 0.050 (3) | 0.0304 (19) | −0.001 (2) | 0.0037 (16) | 0.0013 (19) |
C15 | 0.039 (2) | 0.041 (2) | 0.0274 (19) | 0.0105 (19) | −0.0001 (16) | 0.0006 (17) |
C16 | 0.036 (2) | 0.036 (2) | 0.0291 (19) | −0.0029 (18) | 0.0082 (15) | −0.0017 (17) |
O1W | 0.0383 (15) | 0.0506 (17) | 0.0330 (14) | −0.0010 (14) | 0.0064 (12) | −0.0041 (13) |
O2W | 0.0541 (18) | 0.0551 (19) | 0.0307 (14) | 0.0100 (16) | −0.0024 (12) | −0.0096 (13) |
Geometric parameters (Å, º) top
O1—N1 | 1.411 (3) | C9—C10 | 1.514 (4) |
N1—C16 | 1.477 (4) | C9—H9A | 0.9900 |
N1—C15 | 1.489 (4) | C9—H9B | 0.9900 |
N1—C1 | 1.494 (4) | C10—C11 | 1.516 (4) |
C1—C2 | 1.526 (4) | C10—H10A | 0.9900 |
C1—H1A | 0.9900 | C10—H10B | 0.9900 |
C1—H1B | 0.9900 | C11—C12 | 1.515 (4) |
C2—C3 | 1.522 (4) | C11—H11A | 0.9900 |
C2—H2A | 0.9900 | C11—H11B | 0.9900 |
C2—H2B | 0.9900 | C12—C13 | 1.516 (4) |
C3—C4 | 1.520 (4) | C12—H12A | 0.9900 |
C3—H3A | 0.9900 | C12—H12B | 0.9900 |
C3—H3B | 0.9900 | C13—C14 | 1.522 (4) |
C4—C5 | 1.518 (4) | C13—H13A | 0.9900 |
C4—H4A | 0.9900 | C13—H13B | 0.9900 |
C4—H4B | 0.9900 | C14—H14A | 0.9800 |
C5—C6 | 1.519 (4) | C14—H14B | 0.9800 |
C5—H5A | 0.9900 | C14—H14C | 0.9800 |
C5—H5B | 0.9900 | C15—H15A | 0.9800 |
C6—C7 | 1.514 (4) | C15—H15B | 0.9800 |
C6—H6A | 0.9900 | C15—H15C | 0.9800 |
C6—H6B | 0.9900 | C16—H16A | 0.9800 |
C7—C8 | 1.520 (4) | C16—H16B | 0.9800 |
C7—H7A | 0.9900 | C16—H16C | 0.9800 |
C7—H7B | 0.9900 | O1W—H1W | 0.88 |
C8—C9 | 1.512 (4) | O1W—H2W | 0.87 |
C8—H8A | 0.9900 | O2W—H3W | 0.88 |
C8—H8B | 0.9900 | O2W—H4W | 0.88 |
| | | |
O1—N1—C16 | 108.0 (2) | C7—C8—H8B | 108.6 |
O1—N1—C15 | 109.7 (2) | H8A—C8—H8B | 107.6 |
C16—N1—C15 | 109.4 (3) | C8—C9—C10 | 114.8 (3) |
O1—N1—C1 | 106.3 (2) | C8—C9—H9A | 108.6 |
C16—N1—C1 | 111.8 (3) | C10—C9—H9A | 108.6 |
C15—N1—C1 | 111.6 (3) | C8—C9—H9B | 108.6 |
N1—C1—C2 | 117.0 (2) | C10—C9—H9B | 108.6 |
N1—C1—H1A | 108.0 | H9A—C9—H9B | 107.5 |
C2—C1—H1A | 108.0 | C9—C10—C11 | 114.8 (3) |
N1—C1—H1B | 108.0 | C9—C10—H10A | 108.6 |
C2—C1—H1B | 108.0 | C11—C10—H10A | 108.6 |
H1A—C1—H1B | 107.3 | C9—C10—H10B | 108.6 |
C3—C2—C1 | 109.5 (2) | C11—C10—H10B | 108.6 |
C3—C2—H2A | 109.8 | H10A—C10—H10B | 107.5 |
C1—C2—H2A | 109.8 | C12—C11—C10 | 114.8 (3) |
C3—C2—H2B | 109.8 | C12—C11—H11A | 108.6 |
C1—C2—H2B | 109.8 | C10—C11—H11A | 108.6 |
H2A—C2—H2B | 108.2 | C12—C11—H11B | 108.6 |
C4—C3—C2 | 114.7 (3) | C10—C11—H11B | 108.6 |
C4—C3—H3A | 108.6 | H11A—C11—H11B | 107.6 |
C2—C3—H3A | 108.6 | C11—C12—C13 | 114.7 (3) |
C4—C3—H3B | 108.6 | C11—C12—H12A | 108.6 |
C2—C3—H3B | 108.6 | C13—C12—H12A | 108.6 |
H3A—C3—H3B | 107.6 | C11—C12—H12B | 108.6 |
C5—C4—C3 | 113.7 (3) | C13—C12—H12B | 108.6 |
C5—C4—H4A | 108.8 | H12A—C12—H12B | 107.6 |
C3—C4—H4A | 108.8 | C12—C13—C14 | 114.2 (3) |
C5—C4—H4B | 108.8 | C12—C13—H13A | 108.7 |
C3—C4—H4B | 108.8 | C14—C13—H13A | 108.7 |
H4A—C4—H4B | 107.7 | C12—C13—H13B | 108.7 |
C4—C5—C6 | 114.7 (3) | C14—C13—H13B | 108.7 |
C4—C5—H5A | 108.6 | H13A—C13—H13B | 107.6 |
C6—C5—H5A | 108.6 | C13—C14—H14A | 109.5 |
C4—C5—H5B | 108.6 | C13—C14—H14B | 109.5 |
C6—C5—H5B | 108.6 | H14A—C14—H14B | 109.5 |
H5A—C5—H5B | 107.6 | C13—C14—H14C | 109.5 |
C7—C6—C5 | 114.1 (3) | H14A—C14—H14C | 109.5 |
C7—C6—H6A | 108.7 | H14B—C14—H14C | 109.5 |
C5—C6—H6A | 108.7 | N1—C15—H15A | 109.5 |
C7—C6—H6B | 108.7 | N1—C15—H15B | 109.5 |
C5—C6—H6B | 108.7 | H15A—C15—H15B | 109.5 |
H6A—C6—H6B | 107.6 | N1—C15—H15C | 109.5 |
C6—C7—C8 | 114.7 (2) | H15A—C15—H15C | 109.5 |
C6—C7—H7A | 108.6 | H15B—C15—H15C | 109.5 |
C8—C7—H7A | 108.6 | N1—C16—H16A | 109.5 |
C6—C7—H7B | 108.6 | N1—C16—H16B | 109.5 |
C8—C7—H7B | 108.6 | H16A—C16—H16B | 109.5 |
H7A—C7—H7B | 107.6 | N1—C16—H16C | 109.5 |
C9—C8—C7 | 114.6 (2) | H16A—C16—H16C | 109.5 |
C9—C8—H8A | 108.6 | H16B—C16—H16C | 109.5 |
C7—C8—H8A | 108.6 | H1W—O1W—H2W | 113 |
C9—C8—H8B | 108.6 | H3W—O2W—H4W | 114 |
| | | |
O1—N1—C1—C2 | 173.4 (3) | C5—C6—C7—C8 | 179.5 (3) |
C16—N1—C1—C2 | −69.1 (4) | C6—C7—C8—C9 | 178.2 (3) |
C15—N1—C1—C2 | 53.8 (4) | C7—C8—C9—C10 | 179.7 (3) |
N1—C1—C2—C3 | 172.1 (3) | C8—C9—C10—C11 | 178.6 (3) |
C1—C2—C3—C4 | 176.7 (3) | C9—C10—C11—C12 | 179.9 (3) |
C2—C3—C4—C5 | 179.3 (3) | C10—C11—C12—C13 | 178.6 (3) |
C3—C4—C5—C6 | 179.1 (3) | C11—C12—C13—C14 | −179.4 (3) |
C4—C5—C6—C7 | 178.3 (3) | | |
Hydrogen-bond geometry (Å, º) top
D—H···A | D—H | H···A | D···A | D—H···A |
O1W—H1W···O1 | 0.88 | 1.85 | 2.727 (3) | 174 |
O1W—H2W···O2Wi | 0.87 | 1.97 | 2.832 (4) | 170 |
O2W—H3W···O1 | 0.88 | 1.87 | 2.741 (4) | 177 |
O2W—H4W···O1Wii | 0.88 | 2.07 | 2.829 (4) | 144 |
Symmetry codes: (i) −x+2, −y+1, −z; (ii) −x+2, y−1/2, −z+1/2. |
Experimental details
Crystal data |
Chemical formula | C16H35NO·2H2O |
Mr | 293.48 |
Crystal system, space group | Monoclinic, P21/c |
Temperature (K) | 100 |
a, b, c (Å) | 22.782 (8), 8.110 (5), 9.995 (5) |
β (°) | 91.19 (2) |
V (Å3) | 1846.3 (16) |
Z | 4 |
Radiation type | Mo Kα |
µ (mm−1) | 0.07 |
Crystal size (mm) | 0.48 × 0.17 × 0.03 |
|
Data collection |
Diffractometer | Nonius KappaCCD (with Oxford Cryostream cooler) diffractometer |
Absorption correction | – |
No. of measured, independent and observed [I > 2σ(I)] reflections | 15919, 3508, 1746 |
Rint | 0.076 |
(sin θ/λ)max (Å−1) | 0.617 |
|
Refinement |
R[F2 > 2σ(F2)], wR(F2), S | 0.086, 0.195, 1.06 |
No. of reflections | 3508 |
No. of parameters | 196 |
No. of restraints | 4 |
H-atom treatment | H-atom parameters constrained |
Δρmax, Δρmin (e Å−3) | 0.32, −0.20 |
Selected geometric parameters (Å, º) topO1—N1 | 1.411 (3) | N1—C15 | 1.489 (4) |
N1—C16 | 1.477 (4) | N1—C1 | 1.494 (4) |
| | | |
O1—N1—C16 | 108.0 (2) | C16—N1—C1 | 111.8 (3) |
O1—N1—C15 | 109.7 (2) | C15—N1—C1 | 111.6 (3) |
C16—N1—C15 | 109.4 (3) | N1—C1—C2 | 117.0 (2) |
O1—N1—C1 | 106.3 (2) | C3—C2—C1 | 109.5 (2) |
| | | |
O1—N1—C1—C2 | 173.4 (3) | N1—C1—C2—C3 | 172.1 (3) |
Hydrogen-bond geometry (Å, º) top
D—H···A | D—H | H···A | D···A | D—H···A |
O1W—H1W···O1 | 0.88 | 1.85 | 2.727 (3) | 174 |
O1W—H2W···O2Wi | 0.87 | 1.97 | 2.832 (4) | 170 |
O2W—H3W···O1 | 0.88 | 1.87 | 2.741 (4) | 177 |
O2W—H4W···O1Wii | 0.88 | 2.07 | 2.829 (4) | 144 |
Symmetry codes: (i) −x+2, −y+1, −z; (ii) −x+2, y−1/2, −z+1/2. |
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There is a paucity of structural data in the literature on fatty amine oxides. They are commercially important surfactants because of their extensive use in detergents (Maisonneuve, 1991) and surfactant compositions. As a class, these compounds have been both known and commercially available since the mid 1960 s (Devinsky, 1986). End uses for these materials generally vary with respect to the length of the included alkyl chain, with `light' chains (C8 and C10) being especially effective in hard surface degreasers and specialty cleaners (Miller et al., 1995), `medium' chains (C12 and C14) finding broad usage in light-duty detergents and dishwash formulations (Edward, 1963), and `heavy' chains (C16, C18 and higher) having useful properties in fiber treatments, such as fabric softeners, antistatic treatments, and hair-conditioner products (Shapiro, 1970).
Generally, these tertiary amine oxides are manufactured, supplied, and formulated as aqueous solutions. A major departure from this trend was developed by workers at Ethyl Corporation, when they were able to produce a family of stable easy-to-handle liquid and solid compositions with a broad spectrum of tertiary amine oxides dissolved in non-aqueous `solvents' or co-surfactants (Sauer et al., 1991; Hughes et al., 1992). Additional work, at least with several of the medium and heavy alkyl-chain systems, also demonstrated the possibility for the production of essentially solvent-free solid non-hygroscopic powdered forms of these amine oxide surfactants (Smith et al., 1991). Based upon elemental analysis and indirect spectral evidence, it was postulated by these workers that the actual form of these `solid' materials approximated that of an alkyldimethylamine oxide dihydrate. Extensive characterization of these amorphous powders provided much useful data for the formulator, such as melting point, critical micelle concentration (CMC), hydrophile–lipophile balance data (HLB), and solubility data. To date, however, no direct evidence for the exact physical and chemical structure of these solvent-free solid species has been available. We have determined the structure of the title compound, N,N-dimethyl-n-tetradecylamine oxide dihydrate, (II), to better characterize this family of compounds, to provide a more exact understanding of the nature of one of its members, and, at least inferentially, to shed light on the probable structures of other homologues in this family.
The title compound, (II), was prepared by reaction of the starting liquid amine, (I), with 70% H2O2 in the presence of CO2 catalyst (see reaction Scheme below). By using 70% H2O2, the 30% available water is apparently sufficient for formation of the solid dihydrate as thin fragile plates. It is fortuitous that the dihydrate is crystalline, as N-alkyl-N,N-dimethylamine oxides are notoriously difficult to crystallize. None are present in the Cambridge Structural Database (CSD; Allen, 2002), except for trimethylamine oxide (Caron et al., 1964). The structure of N,N-dimethylethanolamine N-oxide (Maia et al., 1984) has also been reported. Ammonium salts of N-alkyl-N,N-dimethylamines are common in the CSD, with ten entries present for alkyl = n-tetradecyl.
The asymmetric unit for (II) is shown in Fig. 1. The alkyl group is extended and slightly bowed, with atoms C2, C13 and C14 lying 0.084 (3), 0.071 (3) and 0.064 (3) Å, respectively, to one side of the best plane of C2–C14, while atoms C7 and C8 lie 0.046 (4) and 0.058 (4) Å to the opposite side. The C—C distances of the hydrocarbon chain vary in the range 1.512 (4)–1.526 (4) Å, with a mean value of 1.5180 (11) Å. Most intrachain bond angles of the hydrocarbon chain fall within the narrow range 113.7 (3)–114.8 (3)°, with N1—C1—C3 slightly larger and C1—C2—C3 slightly smaller. The N—O distance compares with a value of 1.404 Å (corrected for libration) in trimethylamine oxide (Caron et al., 1964) and a value of 1.399 Å (mean of three) in N,N-dimethylethanolamine N-oxide (Maia et al., 1984).
The unit cell is shown in Fig. 2, which illustrates the hydrogen-bonded regions near x = 0, where the water molecules associate with the head-to-head hydrophilic ends of the fatty amine N-oxide molecules. In the interior of the cell, the parallel hydrocarbon chains interdigitate along the [010] direction. The hydrophilic region is shown in Fig. 3. Each water molecule donates two hydrogen bonds and accepts one, linking the N-oxide groups into six-oxygen centrosymmetric rings. These rings are further linked by H2O···H2O hydrogen bonds to form two-dimensional arrays.