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In recent years, Ga-based liquid metals have emerged as a prominent research focus in catalysis, owing to their unique properties, including fluidity, low melting point, high thermal and electrical conductivity, and tunable surface characteristics. This review summarizes the synthesis strategies for Ga-based liquid metal catalysts, with a focus on recent advances in their applications across electrocatalysis, thermal catalysis, photocatalysis, and related fields. In electrocatalysis, these catalysts exhibit potential for reactions such as electrocatalytic CO reduction, electrocatalytic ammonia synthesis, electrocatalytic hydrogen production, and the electrocatalytic oxidation of alcohols. As to thermal catalysis, these catalysts are employed in processes such as alkane dehydrogenation, selective hydrogenation, thermocatalytic CO reduction, thermocatalytic ammonia synthesis, and thermocatalytic plastic degradation. In photocatalysis, they can be used in other photocatalytic reactions such as organic matter degradation and overall water splitting. Furthermore, Ga-based liquid metal catalysts also exhibit distinct advantages in catalytic reactions within battery systems and mechano-driven catalysis, offering innovative concepts and technical pathways for developing novel catalytic systems. Finally, this review discusses the current challenges and future prospects in Ga-based liquid metal catalysis.
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http://dx.doi.org/10.3390/nano15151176 | DOI Listing |
Nanomaterials (Basel)
July 2025
State Key Laboratory of Heavy Oil Processing, College of Chemistry and Chemical Engineering, China University of Petroleum (East China), Qingdao 266580, China.
In recent years, Ga-based liquid metals have emerged as a prominent research focus in catalysis, owing to their unique properties, including fluidity, low melting point, high thermal and electrical conductivity, and tunable surface characteristics. This review summarizes the synthesis strategies for Ga-based liquid metal catalysts, with a focus on recent advances in their applications across electrocatalysis, thermal catalysis, photocatalysis, and related fields. In electrocatalysis, these catalysts exhibit potential for reactions such as electrocatalytic CO reduction, electrocatalytic ammonia synthesis, electrocatalytic hydrogen production, and the electrocatalytic oxidation of alcohols.
View Article and Find Full Text PDFLangmuir
August 2025
State Key Laboratory of Efficient Production of Forest Resources, Beijing Key Laboratory of Lignocellulosic Chemistry, Beijing Forestry University, Beijing 100083, PR China.
Owing to the requirement for precise measurement of angular displacement across various industries, the development of tilt sensors has garnered significant attention in both academia and industry. Nevertheless, most current tilt sensors face challenges, such as mechanical friction and wear, complex structures, and high manufacturing costs. Here, a novel tilt sensor was designed by encapsulating based on Ga-based liquid metal in a nature-inspired capillary tube with an anisotropic microcone array.
View Article and Find Full Text PDFACS Appl Mater Interfaces
July 2025
School of Chemical Engineering, Sungkyunkwan University, Suwon 16419, Republic of Korea.
Ga-based liquid metals (LMs) are effective materials for maintaining the structural stability of Li-ion battery electrodes because of their conductive, soft, self-healing, and nontoxic properties. When used as an artificial interface for Li metal anodes, this interface promotes lithiophilic and structurally uniform Li deposition, extending battery lifespan. However, the high reactivity of Ga with other metals can lead to alloy formation while also causing corrosion and rapid interfacial changes upon contact.
View Article and Find Full Text PDFMolecules
May 2025
Key Laboratory of State Forest Food Resources Utilization and Quality Control, Zhejiang Academy of Forestry, Hangzhou 310023, China.
This study aimed to optimize a novel deep eutectic solvents (DESs)-assisted extraction process for polyphenols in the leaves of (AGPL) with response surface methodology (RSM) and a genetic algorithm-artificial neural network (GA-ANN). Under the influence of ultrasonic excitation, the L-carnitine-1,4-butanediol system was selected for the phenolics extraction process. The ideal conditions for AGPL extraction were the following: liquid to solid ratio of 35.
View Article and Find Full Text PDFACS Appl Mater Interfaces
June 2025
School of Chemical and Biomolecular Engineering, University of Sydney, Darlington, NSW 2008, Australia.
Mechanical agitation effectively breaks up bulk liquid metal into small particles that can be used for various applications. Although voltage is known to reduce surface tension in gallium (Ga)-based liquid metals and affects sonication-induced fragmentation, this effect remains unexplored. This study employs ultra-high-speed imaging (as high as 100,000 frames per second) to investigate particle formation under different liquid metal surface tension values influenced by the applied negative, zero, and positive voltages.
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