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This work addresses the challenge of achieving advanced fibril morphology of non-fullerene acceptors (NFAs) in layer-by-layer organic solar cels (LBL-OSCs) by cycloalkyl chain strategy, focusing on ta series of Y6-type NFAs, namely BTP-C6, BTP-C8 and BTP-C12, featured with cyclohexyl, cyclooctyl and cyclododecyl chains with increasing steric hindrance. These side chains influenced significantly molecular planarity, packing and film morphology, which are critical for device performance. BTP-C6 exhibits optimal molecular packing and fibril network morphology, enabling efficient exciton dissociation, charge transport and balanced carrier mobilities, finally achieving PCEs of 19.28% and 19.62% with chloroform- and toluene-cast acceptor layers, respectively. BTP-C8 featuring enhanced planarity (dihedral angle 8.27°) showed the loosest packing (packing coefficient 49.6%) due to the increased steric hindrance of side chains, limiting intermolecular charge transport. Conversely, BTP-C12 formed a high crystalline and tightly packed 3D network but suffered from reduced intramolecular charge transfer caused by severe molecular distortion (dihedral angle 27.27°). The findings in this work underscore the critical role of side-chain engineering in governing molecular packing and morphology, offering a systematic understanding of the relationships between steric hindrance, crystallinity and device performance, while providing a rational design strategy for next-generation NFAs to advance high-performance LBL-OSCs.
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http://dx.doi.org/10.1002/smll.202500602 | DOI Listing |
Elife
September 2025
Department of Chemistry, University of Massachusetts, Amherst, United States.
Voltage-dependence gating of ion channels underlies numerous physiological and pathophysiological processes, and disruption of normal voltage gating is the cause of many channelopathies. Here, long timescale atomistic simulations were performed to directly probe voltage-induced gating transitions of the big potassium (BK) channels, where the voltage sensor domain (VSD) movement has been suggested to be distinct from that of canonical Kv channels but remains poorly understood. Using a Core-MT construct without the gating ring, multiple voltage activation transitions were observed at 750 mV, allowing detailed analysis of the activated state of BK VSD and key mechanistic features.
View Article and Find Full Text PDFmBio
September 2025
School of Life Sciences, University of Warwick, Coventry, United Kingdom.
The FtsEX-EnvC-AmiA/B system is a key component of the cell division machinery that directs breakage of the peptidoglycan layer during separation of daughter cells. Structural and mechanistic studies have shown that ATP binding by FtsEX in the cytoplasm drives periplasmic conformational changes in EnvC, which lead to the binding and activation of peptidoglycan amidases such as AmiA and AmiB. The FtsEX-EnvC amidase system is highly regulated to prevent cell lysis with at least two separate layers of autoinhibition that must be relieved to initiate peptidoglycan hydrolysis during division.
View Article and Find Full Text PDFActa Crystallogr E Crystallogr Commun
September 2025
University of the Free State, Chemistry Department, Bloemfontein, South Africa.
The crystal structure of a nitrate anion caged in spherical vanadium and oxygen structure surrounded by sodium hy-droxy and water solvent mol-ecules, systematic name poly[[hepta-deca-aqua-tetra-deca-oxidonona-sodium][penta-cosa-aqua-nitratoundeca-oxido-penta-deca-vanadium]], HNNaOV is reported. The complex crystallizes in the non-centrosymmetric space group and exhibits many inter- and intra-molecular hydrogen-bonding inter-actions. The complex contains V and V centres, which are six-coordinate or octa-hedrally coordinated.
View Article and Find Full Text PDFActa Crystallogr E Crystallogr Commun
September 2025
Department of Chemistry, Bahir Dar University, PO Box 79, Bahir Dar, Ethiopia.
The title compound, CHNO·Br·CBr, consists of one 4-formyl-,-di-methyl-benzenaminium bromide and a tetra-bromo-methane mol-ecule. In the crystal, the bromide ions link 4-formyl-,-di-methyl-benzenaminium moieties through inter-molecular C-H⋯Br and N-H⋯Br hydrogen bonds, while inter-molecular C-H⋯O hydrogen bonds link 4-formyl-,-di-methyl-benzenaminium cations, enclosing (18) ring motifs, into a di-periodic network structure. The tetra-bromo-methane mol-ecules fill the spaces between the layers.
View Article and Find Full Text PDFActa Crystallogr E Crystallogr Commun
September 2025
Chemistry Department, Faculty of Science, Hadhramout University, Mukalla, Hadhramout, Yemen.
In the mol-ecule of the title compound, CHNO, the isoxazol and phenyl rings are oriented at a dihedral angle of 14.84 (5)°. The 2-cyano-acrylate moiety is in - configuration.
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