Aqueous Zn-ion batteries (ZIBs) have experienced substantial advancements recently, while the aqueous electrolytes exhibit limited thermal adaptability. The low-cost Zn(BF) salt possesses potential low-temperature application, while brings unsatisfied stability of Zn anodes. To address this challenge, an ionic liquid based eutectic electrolyte (ILEE) utilizing the Zn(BF) presenting remarkable stability across a temperature range of ≈-100-150 °C is developed, enabling ZIBs to operate in diverse thermal conditions. The inner Zn solvation structure can be modulated to a BF -rich state within the ILEE system, forming a static ZnF₂ layer at the electrolyte-Zn anode interface, as evidenced by ab initial molecular dynamic simulations. Moreover, the positively charged EMIM can accumulate on the Zn anodes to form the secondary electrostatic dynamic shield that mitigates the uncontrollable Zn dendrites growth, enhancing the overall cycling life of Zn anodes to over 10 times compared with the pure Zn(BF) system. When utilizing the ILEE as the electrolyte, PANI||Zn full cells demonstrate acceptable performances under the all-temperature environments, especially presenting a long life of over 9500 cycles at a low temperature of -40 °C and 500 cycles at a high temperature of 60 °C. This special ILEE holds significant promise for future aqueous batteries in extreme environment.
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http://dx.doi.org/10.1002/adma.202418947 | DOI Listing |
The fusion kinetics of block copolymer micelles in dilute solutions have been investigated. As a model system, 1,2-polybutadiene--poly(ethylene oxide) micelles in the ionic liquid 1-butyl-3-methylimidazolium tetrafluoroborate have been studied. The ionic liquid is a selective solvent for poly(ethylene oxide), promoting the self-assembly of the block copolymer into spherical micelles.
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March 2025
Key Laboratory of Materials Chemistry for Energy Conversion and Storage, Ministry of Education (HUST), School of Chemistry and Chemical Engineering, Huazhong University of Science and Technology (HUST), Wuhan, 430074, China.
As technology has developed by leaps and bounds over decades, the development of high-performance supramolecular adhesives has become crucial in both scientific and industrial fields. Ionic liquids (ILs)-based adhesives, containing ILs segment, utilizing ILs chemical structure as either the primary adhesive component or key functional group, have materialized as a highly transformative subject matter for cutting-edge and emerging applications. Rational adhesive design strategies, carefully balancing adhesion and cohesion behavior, are also required when constructing ILs-based adhesives.
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February 2025
Laboratory of Systems Microbiology, Department of Microbial Sciences, University of Surrey, Guildford, United Kingdom.
Microbial Electrochemical Technology (MET) offers a promising avenue for CO utilization by leveraging the ability of chemolithotrophic microorganisms to use inorganic carbon in biosynthetic processes. By harnessing the power of electroactive bacteria, METs can facilitate the conversion of inorganic carbon into organic compounds. Therefore, this work combines biosurfactant production at the anode and PHB production at the cathode of Microbial Fuel Cells (MFCs), while testing the efficiency of Microbial Electrosynthesis Cells (MECs), and traditional culture in liquid media.
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March 2025
Université Paris-Saclay, INRAE, AgroParisTech, Institute Jean-Pierre Bourgin for Plant Sciences (IJPB), Versailles 78000, France.
Among all the materials resulting from the recovery of biomass, humin coproducts are produced today on a large scale, particularly in the sugar industry and biorefineries. Humins formation, with typical yields between 10 and 50 wt %, significantly reduces the efficiency and economic viability of the processes. With their complex structure, low solubility, and low reactivity, their valorization constitutes a real challenge.
View Article and Find Full Text PDFACS Appl Mater Interfaces
March 2025
Extreme Materials Research Center, Korea Institute of Science and Technology, Seoul 02792, Republic of Korea.
Transient electronics, designed to degrade after a defined period, are ideal for biomedical implants that eliminate the need for secondary removal surgeries and contribute to sustainable electronics by leaving no electronic waste. While significant progress has been made in developing semiconductors, electrodes, and substrates, dielectric layers for bioapplicable transient electronics that combine flexibility, self-healing capabilities, and high dielectric constants (high-k) remain underexplored. This study introduces urea-linked polycaprolactone (PCL-IU)/ionic liquid (IL) hybrids as dielectric materials.
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