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Heavy atom substitution in chalcogenophenes is a versatile strategy for tailoring and ultimately improving conjugated polymer properties. While thiophene monomers are commonly implemented in polymer designs, relatively little is known regarding the molecular properties of the heavier chalcogenophenes. Herein, we use density functional theory (DFT) calculations to examine how group 16 heteroatoms, including the radioactive polonium, affect polychalcogenophene properties including bond length, chain twisting, aromaticity, and optical properties. Heavier chalcogenophenes are more quinoidal in character and consequently have reduced band gaps and larger degrees of planarity. We consider both the neutral and radical cationic species. Upon p-type doping, bond length rearrangement is indicative of a more delocalized electronic structure, which combined with optical calculations is consistent with the polaron-model of charge storage on conjugated polymer chains. A better understanding of the properties of these materials at their molecular levels will inevitably be useful in material design as the polymer community continues to explore more main group containing polymers to tackle issues in electronic devices.
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http://dx.doi.org/10.1002/chem.202100270 | DOI Listing |
J Hazard Mater
March 2025
State Key Laboratory of Advanced Fiber Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, China. Electronic address:
Engineering high-performance N-doped carbon catalysts for peroxymonosulfate (PMS) activation and elucidating their activation mechanism are crucial for the degradation of emerging pollutants. In this study, we propose a novel self-template carbonization strategy (NSCS) based on a N-containing conjugated microporous polymer (NCMP, poly(triphenylamine)) to fabricate high-performance N-doped porous carbon catalysts. Owing to the unique N-mediated catalytic sites within the confined micropores of the NCMP precursor, the NSCS approach enables the investigation of reactive oxygen species evolution and their formation mechanisms as carbonization temperature increases from 200 to 1400 °C.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
March 2025
Nankai University, College of Chemistry, CHINA.
Sodium-organic batteries (SOBs) are widely recognized as a rising star in large-scale energy storage technology because of their abundant resources, high energy density, and environmental friendliness. However, the poor cyclability and rate performance due to high solubility and poor conductivity with organic electrode materials limit their practical applications. Here, we constructed a new crystalline polymer poly(tetraaminobenzoquione) (PTABQ) featuring a layered structure with conjugated backbone and intermolecular hydrogen bonds.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
March 2025
Changchun Institute of Applied Chemistry Chinese Academy of Sciences: Chang Chun Institute of Applied Chemistry Chinese Academy of Sciences, State key Laboratory of Polymer Physics and Chemistry, Renming street 5615, 130022, Changchun, CHINA.
Developing high-performance n-type organic mixed ionic-electronic conducting (OMIEC) polymers with simple structural motifs is still challenging. We show that high-performance, low-threshold-voltage n-type OMIEC polymers can be achieved using a simple diketopyrrolopyrrole unit flanked by thiazole groups, which is functionalized with glycolated side chains. Interestingly, the regiospecific sp2-N position in the repeating unit's thiazole governs the polymer chains' solvation and molecular packing.
View Article and Find Full Text PDFJ Control Release
March 2025
Polymer Therapeutics Lab, Centro de Investigación Príncipe Felipe, Av. Eduardo Primo Yúfera 3, Valencia 46012, Spain; Centro de Investigación Biomédica en Red de Cáncer (CIBERONC), ISCCIII, Madrid, Spain. Electronic address:
Nanomedicines represent promising advanced therapeutics for the enhanced treatment of breast cancer, the primary cause of cancer-related deaths in women; however, the clinical translation of nanomedicines remains challenging. Advanced in vitro models of breast cancer may improve preclinical evaluations and the identification of biomarkers that aid the stratification of patients who would benefit from a given nanomedicine. In this study, we first developed a matrix-embedded breast cancer cell spheroid model representing the extracellular matrix and confirmed the faithful recapitulation of disease aggressiveness in vitro.
View Article and Find Full Text PDFChempluschem
March 2025
Universidad Nacional de Rio Cuarto, Chemistry, Ruta 36 Km 601, 5800, 5800, Rio Cuarto, ARGENTINA.
In this study, two new BOPHY-based derivatives were efficiently synthesized with high yields and characterized by using spectroscopic, electrochemical, and spectroelectrochemical techniques. The introduction of non-conjugated (carbazole (CBZ)) and conjugated (triphenylamine (TPA)) donor groups into the BOPHY macrocycle imparted different electrochemical and spectroscopic properties. Oxidation of BP-2CBZ led to the formation of unstable CBZ radical cations, which further reacted to generate dicarbazole (DCBZ) units, allowing the formation of a polymeric film during anodic cycling.
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