The existence of unique ON⋯π pnicogen bonding in combination with C-H⋯π/C-H⋯O hydrogen bonding interactions has been experimentally affirmed in the heterodimers of nitromethane with aliphatic (acetylene; NMAc) and aromatic (benzene; NMBz) π-electron donors at low temperatures under isolated conditions. The potential energy surfaces of NMAc and NMBz dimers have been probed for stationary points using and DFT computational methods. Three unique geometries for NMAc dimers were optimized, which were stabilized through mixed ON⋯π pnicogen bonding and C-H⋯π/C-H⋯O hydrogen bonding interactions with varying strength. Within the Ar matrix at 12 K, only the C-H⋯π and C-H⋯O bound NMAc dimer was generated, while in N, two geometries, one stabilized by pnicogen bonded ON⋯π and C-H⋯π interactions and the other by C-H⋯π and C-H⋯O interactions, were produced. The NMBz dimer has only one structure stabilized by both ON⋯π pnicogen and C-H⋯π hydrogen bonding interactions that appears to be generated preferentially. The binding energies of both the dimers have the greatest contribution from electrostatics in both classes of NMAc and NMBz dimers, which is closely followed by dispersion forces in the case of NMBz. The increased proton affinity of benzene over acetylene appears to enhance the strength of C-H⋯π hydrogen bonds in NMBz while the ON⋯π pnicogen bonds remain quite similar in strength in both NMBz and NMAc dimers.

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