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The optimization of morphology in all-polymer solar cells (all-PSCs) often relies on the use of solvent additives. However, their tendency to remain trapped in the device due to high boiling points leads to performance degradation over time. In this study, we introduce a novel approach involving the design and synthesis of one dual-asymmetric solid additive featuring mono-brominated-asymmetric dithienothiophene (SL-1). Leveraging the synergistic effects of asymmetric substitution and core structures, fine-tuning the molecule dipole moment enhancing solid additive interactions with host materials, thereby regulating polymer aggregation and influencing blend morphology during device fabrication. This results in highly ordered π-π stacking and a favorable phase-separated morphology within all-polymer active layer. Our work achieved a record efficiency of 19.19 % in eco-friendly all-PSCs, significantly outperforming SL-0 (18.37 %) and SL-2 (16.60 %), both featuring an asymmetric core. Furthermore, SL-1-treated all-PSCs retain over 90 % of their initial efficiency after 2140 hours of operation, with an extrapolated T lifetime reaching 12400 hours. This represents a significant improvement in stability compared to devices treated with solvent additive (1-CN), which typically exhibits a T lifetime of 700 hours. Our findings underscore the efficacy of utilizing dual-asymmetric solid additives as a straightforward and viable strategy for optimizing all-polymer morphology. SL-1 represents a promising advancement towards eco-friendly fabrication and application of high-efficiency and stable all-PSCs.
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http://dx.doi.org/10.1002/anie.202425267 | DOI Listing |
ACS Appl Mater Interfaces
July 2025
Key Laboratory for the Green Preparation and Application of Functional Materials, Ministry of Education, School of Materials Science and Engineering, Hubei University, Wuhan 430062, People's Republic of China.
Existing Janus fog harvesting technologies struggle to achieve efficient and continuous fog collection across various fog flow directions. In this work, we developed a Janus fog harvesting (JHL) system, characterized by a boundary-free Janus system formed by selective modification with octadecanethiol, creating a pair of hydrophilic and hydrophobic domains. The system features a 3D origami macrostructure composed of scallop arrays and shaped like an improved trumpet flower.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
April 2025
Guangdong Engineering Technology Research Center for Photoelectric Sensing Materials & Devices, Guangzhou Key Laboratory of Sensing Materials & Devices, Center for Advanced Analytical Science, School of Chemistry and Chemical Engineering, Guangzhou University, Guangzhou, Guangdong, 510006, P. R. Chi
The optimization of morphology in all-polymer solar cells (all-PSCs) often relies on the use of solvent additives. However, their tendency to remain trapped in the device due to high boiling points leads to performance degradation over time. In this study, we introduce a novel approach involving the design and synthesis of one dual-asymmetric solid additive featuring mono-brominated-asymmetric dithienothiophene (SL-1).
View Article and Find Full Text PDFPharmaceuticals (Basel)
October 2023
Institute of Pharmaceutical Sciences, University of Freiburg, 79104 Freiburg im Breisgau, Germany.
Dual centrifugation (DC) is an innovative in-vial homogenization and in-vial nanomilling technique that has been in use for the preparation of liposomes for more than one decade. Since then, DC has continuously been developed for preparing various liposomes and other lipid nanoparticles including emulsions and solid lipid nanoparticles (SLNs) as well as polymersomes and nanocrystals. Improvements in equipment technology have been achieved over the past decade, so that DC is now on its way to becoming the -standard for the simple, fast, and aseptic production of lipid nanoparticles and nanocrystals in small and medium batch sizes, including the possibility of simple and fast formulation screening or bedside preparations of therapeutic nanoparticles.
View Article and Find Full Text PDFPharmaceutics
December 2022
Erasmus MC, University Medical Center Rotterdam, Department of Hospital Pharmacy, 3015 GD Rotterdam, The Netherlands.
Int J Pharm
February 2019
Department of Pharmacy, Pharmaceutical Technology and Biopharmaceutics, Ludwig-Maximilians-Universität München, Munich, Germany.
Lipid-based drug delivery has been investigated for a long time when it comes to liposomes and solid-lipid implants or solid-lipid nanoparticles. The promising, characteristic properties of these systems have led to the development of newer lipid-based drug delivery systems for the sustained release of drugs like liposomes for sustained delivery of substances, DepoFoam™ technology, phospholipid-based phase separation gels and vesicular phospholipid gels. Vesicular phospholipid gels (VPGs) are highly concentrated, viscous dispersions of high amounts of phospholipids in aqueous drug solution.
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