Gallium‐Based Liquid Metals as an Engineered Multifunctional Platform: from Biomedical Innovations to Energy and Material Systems
Suqin Han, Li‐Wei Chen, Yan Sun, Yurong Guo, Lan Bao, Mingming Gao, Xing Gao, Ling Chen 等 10 位
Qilu University of Technology University of Jinan Shandong Institute of Metrology Shandong University
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摘要与影响
This review breaks with traditional research by repositioning gallium‐based liquid metals (LMs) as a programmable, dynamically reconfigurable multifunctional platform. Leveraging their unique liquid‐state properties including morphological transformability, high thermal/electrical conductivity, catalytic activity, and biocompatibility, this work systematically elucidates how proactive design and precise modulation of these physicochemical attributes enable the construction of cross‐domain adaptive integrated systems. The core innovation lies in proposing an “engineered platform” strategy: By harnessing adaptive interfacial capabilities and dynamic reconfigurability of LM, it achieves on‐demand functional convergence across diverse fields from biomedicine and advanced energy to intelligent sensing and thermal management. Beyond analyzing LM's material essence and controllable synthesis methods, this work reveals a synergistic “property‐function‐system” design mechanism, thereby establishing an innovative paradigm for developing next‐generation smart materials and disruptive technologies.
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生物医学Neuroscience and Neural Engineering
Innovative Microfluidic and Catalytic Techniques Innovation · 3D Printing in Biomedical Research
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