TY - JOUR
T1 - Halogen Bonds under Electric Field with Quantum Accuracy and Relativistic Basis Sets
AU - Ottanà, Gabriele
AU - Mastronardo, Simona
AU - Eminger, Petr
AU - Mráziková, Klaudia
AU - Trusso, Sebastiano
AU - Saija, Franz
AU - Ferus, Martin
AU - Monsù Scolaro, Luigi
AU - Xie, Jing
AU - Tommasini, Matteo
AU - Cassone, Giuseppe
N1 - Publisher Copyright:
© 2026 The Authors. Published by American Chemical Society
PY - 2026/1/15
Y1 - 2026/1/15
N2 - Halogen bonds (XBs) are a cornerstone of supramolecular chemistry, yet their response to external perturbations remains poorly investigated, particularly in systems with heavy elements where relativistic effects are significant. We benchmark two prototypical iodine-chloride X-bonded complexes, ClI···N(CH3)3 and ClI···NCH, under electric fields (EFs) using quantum chemical calculations up to CCSD and CCSD(T). Relativistic basis sets, including the all-electron jorge-TZP-DKH, are assessed against non-relativistic and pseudopotential-based alternatives (def2-TZVP, SDD, LANL2DZ) for their impact on XB geometries, binding energies, vibrational Stark shifts, and electron density redistribution. Explicit relativistic treatments substantially reduce the exaggerated field response otherwise observed. Benchmarking M06-2X and B3LYP with various basis sets against correlated methods confirms the accuracy of M06-2X, while showing that the relativistic effects included in the basis set influence the results more than the choice of functional itself. Symmetry-Adapted Perturbation Theory (SAPT) indicates that electrostatics dominate XB stabilization, with induction becoming more relevant under strong positive fields. Overall, XBs prove markedly more sensitive to external EFs than H-bonds across different field arrangements.
AB - Halogen bonds (XBs) are a cornerstone of supramolecular chemistry, yet their response to external perturbations remains poorly investigated, particularly in systems with heavy elements where relativistic effects are significant. We benchmark two prototypical iodine-chloride X-bonded complexes, ClI···N(CH3)3 and ClI···NCH, under electric fields (EFs) using quantum chemical calculations up to CCSD and CCSD(T). Relativistic basis sets, including the all-electron jorge-TZP-DKH, are assessed against non-relativistic and pseudopotential-based alternatives (def2-TZVP, SDD, LANL2DZ) for their impact on XB geometries, binding energies, vibrational Stark shifts, and electron density redistribution. Explicit relativistic treatments substantially reduce the exaggerated field response otherwise observed. Benchmarking M06-2X and B3LYP with various basis sets against correlated methods confirms the accuracy of M06-2X, while showing that the relativistic effects included in the basis set influence the results more than the choice of functional itself. Symmetry-Adapted Perturbation Theory (SAPT) indicates that electrostatics dominate XB stabilization, with induction becoming more relevant under strong positive fields. Overall, XBs prove markedly more sensitive to external EFs than H-bonds across different field arrangements.
UR - https://www.scopus.com/pages/publications/105027529722
U2 - 10.1021/acs.jpca.5c08038
DO - 10.1021/acs.jpca.5c08038
M3 - Article
C2 - 41485229
AN - SCOPUS:105027529722
SN - 1089-5639
VL - 130
SP - 522
EP - 533
JO - Journal of Physical Chemistry A
JF - Journal of Physical Chemistry A
IS - 2
ER -