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This study explores the molecular structures and properties of quinoxaline-based donor materials complexed with highly efficient electron-acceptor molecules in organic solar cells. Employing density functional theory calculations, the interaction between PBQX (X = 5-F, 6-F, 5-Cl, 5-Br, 6-Cl, 6-Br) electron donors and two well-known electron acceptors (Y6 and BTP-4Br) is systematically analyzed. Variations in the halogen atoms of donor compounds are examined to assess their impact on the electronic structure of donor-acceptor complexes. Halogen atoms (F, Cl, Br) in quinoxylated donors influence weak interactions, crucial for charge transport. Since dipole moment and intermolecular electric field play a significant role in molecular packing and exciton separation, they are also studied, predicting the best performance of PBQ6-F compared to PBQ5-F. Generally transition density matrix, hole-electron analysis, and charge transfer states in complexes corroborate the better behavior of PBQ6-F over PBQ5-F. Finally, all these findings are reflected in the kinetic study, carried out through Marcus theory for the different donor-acceptor combinations analyzed in this work, which could have implications for future experimental studies. As demonstrated by systematic studies such as the present one, variations in halogen atoms shed light on to propose possible donor-acceptor combinations in organic solar cells.
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http://dx.doi.org/10.1002/cphc.202500412 | DOI Listing |
J Fluoresc
September 2025
Chemical Engineering Department, College of Engineering, University of Ha'il, P.O. Box 2440, 81441, Ha'il, Saudi Arabia.
This review delivers a focused and critical evaluation of recent progress in the green synthesis of carbon quantum dots (CQDs), with particular attention to state-of-the-art approaches utilizing renewable biomass as precursors. The main objective is to systematically examine innovative, environmentally friendly methods and clarify their direct influence on the core properties and photocatalytic performance of CQDs. The novelty of this review stems from its comprehensive comparison of green synthetic pathways, revealing how specific processes determine key structural, optical, and electronic attributes of the resulting CQDs.
View Article and Find Full Text PDFSmall
September 2025
Beijing Key Laboratory of Energy Conversion and Storage Materials, College of Chemistry, Beijing Normal University, Beijing, 100875, China.
This study presents a novel carbazole derivative functionalized with hydroxy diphosphonic acid groups (HDPACz) as an efficient annealing-free hole transport layer (HTL) through strong bidentate anchoring to indium tin oxide (ITO). Compared to conventional mono-phosphonic acid counterparts, HDPACz demonstrates superior ITO surface coverage and interfacial dipole, effectively modulating the work function of ITO. Theoretical calculations reveal enhanced adsorption energy (-3.
View Article and Find Full Text PDFSmall
September 2025
Key Laboratory of Nanosystem and Hierarchical Fabrication of Chinese Academy of Sciences, National Center for Nanoscience and Technology, Beijing, 100190, China.
All-small-molecule organic solar cells (ASM-OSCs) with completely definite chemical structure are an ideal model to establish the relationship between molecular structure and device performance via aggregates. The end-capped acceptor unit is of great significance in the regulation of aggregates by essential molecular interactions. However, the successful end-capped acceptor units for small-molecule donors have been rather poorly studied and only focused on the alkyl substituted rhodamine, limiting further development for ASM-OSCs.
View Article and Find Full Text PDFRSC Adv
September 2025
School of Engineering and Technology, National Textile University 37640 Faisalabad Pakistan
[This retracts the article DOI: 10.1039/D4RA01544D.].
View Article and Find Full Text PDFPhys Chem Chem Phys
September 2025
School of Chemistry and Chemical Engineering, Key Laboratory of Theoretical Organic Chemistry and Function Molecule of Ministry of Education, Hunan University of Science and Technology, Xiangtan, 411201, P. R. China.
Additive assisted strategies play a crucial role in optimizing the morphology and improving the performance of organic solar cells (OSCs), yet the molecular-level mechanisms remain unclear. Here, we employ molecular dynamics (AIMD) and density functional theory (DFT) to elucidate the influence of typical additives of 1,8-diiodooctane (DIO) and 3,5-dichlorobromobenzene (DCBB) on molecular packing, electronic structures, and charge transport. It can be observed that both additives can enhance the stacking properties of the donor and acceptor materials, yet they have different effects on the local electrostatic environment.
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