Modulating the Electronic Properties of Conductive Conjugated Coordination Polymers with Atomic-Level Precision

Abstract Conductive metal–organic frameworks and conjugated coordination polymers (CCPs) are promising platforms for low-power electronics and sustainable energy technologies, yet charge-transport design rules remain elusive. In diamine-based frameworks, Cu-coordinated motifs exhibit electrical conductivities several orders of magnitude lower than those of their Ni analogs, but the origin of this disparity has remained unclear, complicating rational selection of earth-abundant metal nodes for multifunctional materials. Here, we report the synthesis and atomic-resolution characterization of Cu-TABQ, a diamine-based CCP grown as single-crystals from tetraamino-p-benzoquinone and copper ions. Microcrystal electron diffraction reveals a distorted pseudosquare-planar Cu-coordination with asymmetric imine bonding, electron localization, and a structural model consistent with possible local protonation/hydrogen bonding. In contrast, Ni-TABQ adopts a planar, symmetric coordination environment that supports charge delocalization and near-metallic transport. Density functional theory suggests that protonation stabilizes the distorted Cu-TABQ structure and suppresses charge transport. Together, these results support an atomic-level explanation for metal-dependent transport in diamine-based frameworks and establish the metal–ligand coordination environment and protonation as tunable handles for designing conductive frameworks.

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Publication Details

Journal
Journal of the American Chemical Society
Published
2026-09-15
DOI
https://doi.org/10.1021/jacs.6c06561
Primary Topic
Metal-Organic Frameworks: Synthesis and Applications
Type
article
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Modulating the Electronic Properties of Conductive Conjugated Coordination Polymers with Atomic-Level Precision

Doran L. Pennington, Mark Del Campo, Katherine A. Mirica, Christopher H. Hendon et al.
Journal of the American Chemical Society
Metal-Organic Frameworks: Synthesis and Applications
article

Modulating the Electronic Properties of Conductive Conjugated Coordination Polymers with Atomic-Level Precision

Doran L. Pennington, Mark Del Campo, Katherine A. Mirica, Christopher H. Hendon, Hyuk‐Jun Noh
article en

Abstract

Abstract Conductive metal–organic frameworks and conjugated coordination polymers (CCPs) are promising platforms for low-power electronics and sustainable energy technologies, yet charge-transport design rules remain elusive. In diamine-based frameworks, Cu-coordinated motifs exhibit electrical conductivities several orders of magnitude lower than those of their Ni analogs, but the origin of this disparity has remained unclear, complicating rational selection of earth-abundant metal nodes for multifunctional materials. Here, we report the synthesis and atomic-resolution characterization of Cu-TABQ, a diamine-based CCP grown as single-crystals from tetraamino-p-benzoquinone and copper ions. Microcrystal electron diffraction reveals a distorted pseudosquare-planar Cu-coordination with asymmetric imine bonding, electron localization, and a structural model consistent with possible local protonation/hydrogen bonding. In contrast, Ni-TABQ adopts a planar, symmetric coordination environment that supports charge delocalization and near-metallic transport. Density functional theory suggests that protonation stabilizes the distorted Cu-TABQ structure and suppresses charge transport. Together, these results support an atomic-level explanation for metal-dependent transport in diamine-based frameworks and establish the metal–ligand coordination environment and protonation as tunable handles for designing conductive frameworks.

Journal of the American Chemical Society
Dartmouth College (US), University of Oregon (US), Seigakuin University (JP), Rigaku (United Kingdom) (GB), Dartmouth Hospital (GB)
Openalex Percentile: Top 25%
Metal-Organic Frameworks: Synthesis and Applications
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