Home The crystal structure of 2-(chloromethyl)pyridine, C6H6ClN
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The crystal structure of 2-(chloromethyl)pyridine, C6H6ClN

  • Eric C. Hosten ORCID logo and Richard Betz ORCID logo EMAIL logo
Published/Copyright: November 23, 2020

Abstract

C6H6ClN, monoclinic, P21/c (no. 14), a = 6.5211(2) Å, b = 10.2467(3) Å, c = 9.1436(3) Å, β = 94.1771(11)°, V = 609.35(3) Å3, Z = 4, Rgt(F) = 0.0260, wRref(F2) = 0.0680, T = 200 K.

CCDC no.: 2042829

The molecular structure is shown in the figure. Table 1 contains crystallographic data and Table 2 contains the list of the atoms including atomic coordinates and displacement parameters.

Table 1:

Data collection and handling.

Crystal:Orange block
Size:0.58 × 0.49 × 0.40 mm
Wavelength:Mo Kα radiation (0.71073 Å)
μ:0.51 mm−1
Diffractometer, scan mode:Bruker APEX-II, φ and ω
θmax, completeness:28.3°, >99%
N(hkl)measured, N(hkl)unique, Rint:5519, 1507, 0.011
Criterion for Iobs, N(hkl)gt:Iobs > 2 σ(Iobs), 1403
N(param)refined:73
Programs:Bruker [1], [, 2], SHELX [3], WinGX/ORTEP [4], Mercury [5], PLATON [6]
Table 2:

Fractional atomic coordinates and isotropic or equivalent isotropic displacement parameters (Å2).

AtomxyzUiso*/Ueq
Cl10.02414 (4)0.82516 (3)0.50239 (3)0.03785 (11)
N10.22254 (14)0.55172 (9)0.65344 (10)0.0310 (2)
C10.30493 (15)0.63345 (10)0.55941 (11)0.0253 (2)
C20.51110 (17)0.66870 (10)0.57089 (12)0.0302 (2)
H20.5636950.7271970.5022220.036*
C30.63882 (17)0.61713 (12)0.68414 (13)0.0359 (2)
H30.7805880.6393250.6943990.043*
C40.55584 (18)0.53282 (12)0.78181 (12)0.0357 (2)
H40.6391750.4960380.8608570.043*
C50.34853 (19)0.50303 (11)0.76203 (13)0.0347 (2)
H50.2925630.4447060.8293860.042*
C60.16048 (18)0.68530 (11)0.43813 (12)0.0325 (2)
H6A0.0610650.6165680.4048560.039*
H6B0.2388040.7108310.3538740.039*

Source of material

The compound was obtained commercially (Sigma-Aldrich). Crystals suitable for the diffraction study were obtained upon repeated freezing and melting of the compound cycling between room temperature and −20 °C. Crystals were selected and mounted under a constant stream of cold nitrogen using pre-cooled equipment to prevent thawing.

Experimental details

Carbon-bound H atoms were placed in calculated positions (C–H 0.95 Å for aromatic carbon atoms, C–H 0.99 Å for methylene groups) and were included in the refinement in the riding model approximation, with U(H) set to 1.2Ueq(C).

Comment

Pyridine is one of the most important synthons in chemistry. Via electrophilic substitution reactions a vast variety of functionalized derivatives is readily available. The interplay between activating and deactivating substituents as well as the competition and synergism between inductive and mesomeric effects allows for its seemingly endless functionalization. The latter gives rise to a large toolbox of new synthons that can be applied for the production of dyes, medications, catalysts and ligands for novel coordination compounds. In continuation of our interest in the influence of substituents on the structural and crystallographic parameters of pyridine-based compounds [7], [8], [9], [10], [11], [12], [13], [14], [15], we sought to characterize the title compound by means of a diffraction study based on single crystals. The molecular and crystal structure of the title compound’s hydrochloride [16], the hydrochloride salt of 2,6-bis(chloromethyl)pyridine [17] and the pertaining neutral compound [18] as well as the neutral dimer 6,6′-bis(chloromethyl)-2,2′-bipyridine [19] have been reported.

The structure solution shows the presence of a pyridine derivative bearing a chloromethyl group as substituent in ortho position to the intracyclic heteroatom. C–N bond lengths measure 1.3382(15) and 1.3403(13) Å while the carbon-halogen bond shows a length of 1.8072(11) Å, which is in good agreement with values for other pyridine derivatives as well as compounds featuring chloromethylene groups, as found in the Cambridge Structural Database [20]. Intracyclic bond angles span a range of 117.11(9)–123.75(11)° with the smallest angle on the pnicogen atom and the largest value on the non-functionalized carbon atom in ortho position to the nitrogen atom. The chlorine atom is twisted out of plane from the aromatic system as the plane set up by the ipso carbon atom and the non-hydrogen atoms of the functional group on the one hand and the least-squares plane as defined by the non-hydrogen atoms of the pyridine scaffold on the other hand enclose an angle of 83.72(9)°.

In the crystal, C–H…N contacts whose range falls by more than 0.1 Å below the sum of van-der-Waals radii of the atoms participating in them are observed. These are established by one of the hydrogen atoms of the chloromethylene group as donor. In terms of graph-set analysis [21], [, 22], the descriptor for these contacts is R22(8) at the unary level. In total, the molecules are connected to form centrosymmetric dimers. The structure is further characterized by π stacking with the shortest intercentroid distance between two centers of gravity measured at 3.7069(6) Å.


Corresponding author: Dr. Richard Betz, Department of Chemistry, Nelson Mandela University, Summerstrand Campus (South), University Way, Summerstrand, PO Box 77000, Port Elizabeth, 6031, South Africa, E-mail:

  1. Author contribution: All the authors have accepted responsibility for the entire content of this submitted manuscript and approved submission.

  2. Research funding: National Research Foundation.

  3. Conflict of interest statement: The authors declare no conflicts of interest regarding this article.

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Received: 2020-10-03
Accepted: 2020-11-08
Published Online: 2020-11-23
Published in Print: 2021-01-26

© 2020 Eric C. Hosten and Richard Betz, published by De Gruyter, Berlin/Boston

This work is licensed under the Creative Commons Attribution 4.0 International License.

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