TY - JOUR
T1 - Controlling the Formation of Two Concomitant Polymorphs in Hg(II) Coordination Polymers
AU - Sanchez Ferez, Francisco
AU - Solans Monfort, Xavier
AU - Calvet, Teresa
AU - Mercè, Font-Bardia.
AU - Pons Picart, Josefina
N1 - Funding Information:
J.P. acknowledges financial support from the CB615921 project, the CB616406 project from “Fundació La Caixa”, and the 2017SGR1687 project from the Generalitat de Catalunya. X.S.-M. acknowledges financial support from MICINN (PID2020-112715GB-I00) and the Generalitat de Catalunya (2017SGR1323). F.S.-F. acknowledges the PIF predoctoral fellowship from the Universitat Autònoma de Barcelona.
Publisher Copyright:
© 2022 American Chemical Society. All rights reserved.
PY - 2022/3/28
Y1 - 2022/3/28
N2 - Controlling the formation of the desired product in the appropriate crystalline form is the fundamental breakthrough of crystal engineering. On that basis, the preferential formation between polymorphic forms, which are referred to as different assemblies achieved by changing the disposition or arrangement of the forming units within the crystalline structure, is one of the most challenging topics still to be understood. Herein, we have observed the formation of two concomitant polymorphs with general formula {[Hg(Pip)2(4,4′-bipy)]·DMF}n (P1A, P1B; Pip = piperonylic acid; 4,4′-bipy = 4,4′-bipyridine). Besides, [Hg(Pip)2(4,4′-bipy)]n (2) has been achieved during the attempts to isolate these polymorphs. The selective synthesis of P1A and P1B has been successfully achieved by changing the synthetic conditions. The formation of each polymorphic form has been ensured by unit cell measurements and decomposition temperature. The elucidation of their crystal structure revealed P1A and P1B as polymorphs, which originates from the Hg(II) cores and intermolecular associations, especially pinpointed by Hg···π and π···π interactions. Density functional theory (DFT) calculations suggest that P1B, which shows Hg(II) geometries that are further from ideality, is more stable than P1A by 13 kJ·mol–1 per [Hg(Pip)2(4,4′-bipy)]·DMF formula unit, and this larger stability of P1B arises mainly from metal···π and π···π interactions between chains. As a result, these structural modifications lead to significant variations of their solid-state photoluminescence.
AB - Controlling the formation of the desired product in the appropriate crystalline form is the fundamental breakthrough of crystal engineering. On that basis, the preferential formation between polymorphic forms, which are referred to as different assemblies achieved by changing the disposition or arrangement of the forming units within the crystalline structure, is one of the most challenging topics still to be understood. Herein, we have observed the formation of two concomitant polymorphs with general formula {[Hg(Pip)2(4,4′-bipy)]·DMF}n (P1A, P1B; Pip = piperonylic acid; 4,4′-bipy = 4,4′-bipyridine). Besides, [Hg(Pip)2(4,4′-bipy)]n (2) has been achieved during the attempts to isolate these polymorphs. The selective synthesis of P1A and P1B has been successfully achieved by changing the synthetic conditions. The formation of each polymorphic form has been ensured by unit cell measurements and decomposition temperature. The elucidation of their crystal structure revealed P1A and P1B as polymorphs, which originates from the Hg(II) cores and intermolecular associations, especially pinpointed by Hg···π and π···π interactions. Density functional theory (DFT) calculations suggest that P1B, which shows Hg(II) geometries that are further from ideality, is more stable than P1A by 13 kJ·mol–1 per [Hg(Pip)2(4,4′-bipy)]·DMF formula unit, and this larger stability of P1B arises mainly from metal···π and π···π interactions between chains. As a result, these structural modifications lead to significant variations of their solid-state photoluminescence.
UR - https://pubs.acs.org/doi/10.1021/acs.inorgchem.1c03762
UR - https://www.scopus.com/pages/publications/85127417226
UR - https://www.mendeley.com/catalogue/59587ec7-85ae-3bb8-9349-ee4afad43ad6/
U2 - 10.1021/acs.inorgchem.1c03762
DO - 10.1021/acs.inorgchem.1c03762
M3 - Artículo
C2 - 35298147
SN - 0020-1669
VL - 61
SP - 4965
EP - 4979
JO - INORGANIC CHEMISTRY
JF - INORGANIC CHEMISTRY
IS - 12
ER -