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Aqueous aluminum metal batteries (AMBs) are regarded as one of the most sustainable energy storage systems among post-lithium-ion candidates, which is attributable to their highest theoretical volumetric capacity, inherent safe operation, and low cost. Yet, the development of aqueous AMBs is plagued by the incapable aluminum plating in an aqueous solution and severe parasitic reactions, which results in the limited discharge voltage, thus making the development of aqueous AMBs unsuccessful so far. Here, we demonstrate that amorphization is an effective strategy to tackle these critical issues of a metallic Al anode by shifting the reduction potential for Al deposition. The amorphous aluminum (-Al) interfacial layer is triggered by an in situ lithium-ion alloying/dealloying process on a metallic Al substrate with low strength. Unveiled by experimental and theoretical investigations, the amorphous structure greatly lowers the Al nucleation energy barrier, which forces the Al deposition competitive to the electron-stealing hydrogen evolution reaction (HER). Simultaneously, the inhibited HER mitigates the passivation, promoting interfacial ion transfer kinetics and enabling steady aluminum plating/stripping for 800 h in the symmetric cell. The resultant multiple full cells using Al@-Al anodes deliver approximately a 0.6 V increase in the discharge voltage plateau compared to that of bare Al-based cells, which far outperform all reported aqueous AMBs. In both symmetric cells and full cells, the excellent electrochemical performances are achieved in a noncorrosive, low-cost, and fluorine-free Al(SO) electrolyte, which is ecofriendly and can be easily adapted for sustainable large-scale applications. This work brings an intriguing picture of the design of metallic anodes for reversible and high-voltage AMBs.
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http://dx.doi.org/10.1021/jacs.2c04820 | DOI Listing |
Environ Sci Process Impacts
August 2025
College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing 210095, China.
Ambroxol (AMB), a widely used expectorant drug, has been ubiquitously detected in aquatic environments due to its limited metabolism in the human body. Herein, we systematically investigated the photodegradation of AMB in waters upon natural sunlight irradiation. AMB has a p value of 8.
View Article and Find Full Text PDFAAPS PharmSciTech
March 2025
Laboratory of Dispersed Systems, Federal University of Rio Grande Do Norte (UFRN), Natal, RN, 59012-520, Brazil.
Amphotericin B (AmB), a potent amphiphilic drug with antifungal and antileishmanial properties, exhibits reduced nephrotoxicity when delivered via lipid-based systems like microemulsions (ME). However, the complexity of these multi-phasic systems challenges the use of simple schemes and models for describing AmB degradation. The aim of this study was to establish a degradation scheme and model for AmB within a ME, alongside a control micellar formulation.
View Article and Find Full Text PDFAdv Mater
June 2024
Helmholtz Institute Ulm (HIU), Helmholtzstraße 11, D-89081, Ulm, Germany.
Low-cost and nontoxic deep eutectic liquid electrolytes (DELEs), such as [AlCl][Urea] (AU), are promising for rechargeable non-aqueous aluminum metal batteries (AMBs). However, their high viscosity and sluggish ion transport at room temperature lead to high cell polarization and low specific capacity, limiting their practical application. Herein, non-solvating 1,2-difluorobenzene (dFBn) is proposed as a co-solvent of DELEs using AU as model to construct a locally concentrated deep eutectic liquid electrolyte (LC-DELE).
View Article and Find Full Text PDFAdv Sci (Weinh)
January 2024
College of Materials Science and Engineering, Guangxi Key Laboratory of Optical and Electronic Materials and Devices and Collaborative Innovation Center for Exploration of Nonferrous Metal Deposits and Efficient Utilization of Resources, Guilin University of Technology, Guilin, 541004, China.
The aqueous micro batteries (AMBs) are expected to be one of the most promising micro energy storage devices for its safe operation and cost-effectiveness. However, the performance of the AMBs is not satisfactory, which is attributed to strong interaction between metal ions and the electrode materials. Here, the first AMBs are developed with NH as charge carrier.
View Article and Find Full Text PDFChem Commun (Camb)
October 2023
College of Chemistry & Materials Science, Key Laboratory of Analytical Science and Technology of Hebei Province, Hebei University, Baoding 071002, China.
Aqueous rechargeable metal batteries (AMBs) have attracted great attention and have been regarded as a next-generation promising energy storage system. However, the high-activity metal anodes usually face side reactions, passivation, and hydrogen evolution reactions, which impede the development of high-performance AMBs. Here, we designed and assembled a Pb metal battery based on a highly reversible Pb metal anode and layered VO cathode, which showed good electrochemical performance.
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