» Articles » PMID: 36855748

Electronic and Magnetic Properties of a Three-Arm Nonconjugated Open-Shell Macromolecule

Overview
Journal ACS Polym Au
Date 2023 Mar 1
PMID 36855748
Authors
Affiliations
Soon will be listed here.
Abstract

Nonconjugated radical polymers (i.e., macromolecules with aliphatic backbones that have stable open-shell sites along their pendant groups) have arisen as an intriguing complement to π-conjugated polymers in organic electronic devices and may prove to have superior properties in magneto-responsive applications. To date, however, the design of nonconjugated radical polymers has primarily focused on linear homopolymer, copolymer, and block polymer motifs even though conjugated dendritic macromolecules (i.e., polyradicals) have shown significant promise in terms of their response under applied magnetic fields. Here, we address this gap in creating a nonconjugated, three-arm radical macromolecule with nitroxide open-shell sites using a straightforward, single-step reaction, and we evaluated the electronic and magnetic properties of this material using a combined computational and experimental approach. The synthetic approach employed resulted in a high-purity macromolecule with a well-defined molecular weight and narrow molecular weight distribution. Moreover, epoxide-based units were implemented in the three-arm radical macromolecule design, and this resulted in a nonlinear radical macromolecule with a low (i.e., below room temperature) glass transition temperature and one that was an amorphous material in the solid state. These properties allowed thin films of the three-arm radical macromolecule to have electrical conductivity values on par with many linear radical polymers previously reported, and our computational efforts suggest the potential of higher generation open-shell dendrimers to achieve advanced electronic and magnetic properties. Importantly, the three-arm radical macromolecule also demonstrated antiferromagnetic exchange coupling between spins at temperatures < 10 K. In this way, this effort puts forward key structure-property relationships in nonlinear radical macromolecules and presents a clear path for the creation of next-generation macromolecules of this type.

Citing Articles

Verdazyl radical polymers for advanced organic spintronics.

Tahir H, Liu K, Yang Y, Baruah K, Savoie B, Boudouris B Nat Commun. 2025; 16(1):652.

PMID: 39809810 PMC: 11733114. DOI: 10.1038/s41467-025-56056-w.


Anomalous magnetoresistance in a nonconjugated radical polymer glass.

Akkiraju S, Gilley D, Savoie B, Boudouris B Proc Natl Acad Sci U S A. 2023; 120(43):e2308741120.

PMID: 37862383 PMC: 10614627. DOI: 10.1073/pnas.2308741120.

References
1.
He J, Mukherjee S, Zhu X, You L, Boudouris B, Mei J . Highly Transparent Crosslinkable Radical Copolymer Thin Film as the Ion Storage Layer in Organic Electrochromic Devices. ACS Appl Mater Interfaces. 2018; 10(22):18956-18963. DOI: 10.1021/acsami.8b03235. View

2.
Grimme S . Exploration of Chemical Compound, Conformer, and Reaction Space with Meta-Dynamics Simulations Based on Tight-Binding Quantum Chemical Calculations. J Chem Theory Comput. 2019; 15(5):2847-2862. DOI: 10.1021/acs.jctc.9b00143. View

3.
Bannwarth C, Ehlert S, Grimme S . GFN2-xTB-An Accurate and Broadly Parametrized Self-Consistent Tight-Binding Quantum Chemical Method with Multipole Electrostatics and Density-Dependent Dispersion Contributions. J Chem Theory Comput. 2019; 15(3):1652-1671. DOI: 10.1021/acs.jctc.8b01176. View

4.
Feng L, Zhu C, Yuan H, Liu L, Lv F, Wang S . Conjugated polymer nanoparticles: preparation, properties, functionalization and biological applications. Chem Soc Rev. 2013; 42(16):6620-33. DOI: 10.1039/c3cs60036j. View

5.
Huang G, Daiguebonne C, Calvez G, Suffren Y, Guillou O, Guizouarn T . Strong Magnetic Coupling and Single-Molecule-Magnet Behavior in Lanthanide-TEMPO Radical Chains. Inorg Chem. 2018; 57(17):11044-11057. DOI: 10.1021/acs.inorgchem.8b01640. View