微流体和等离子体的协同作用:进展,应用和未来的方向
1Department of Chemical Engineering, Queen's University, Kingston, Ontario, K7L 3N6, Canada. ce32@queensu.ca.
Lab on a chip
|January 8, 2025
概括
本综述探讨了纳米塑料和微流体之间的协同作用,强调了纳米级光操纵如何推动流体处理和颗粒捕获方面的进步. 未来的前景包括用于增强应用的新二维材料.
科学领域:
- 物理 物理学 物理
- 材料科学 材料科学 材料科学
- 工程 工程师 工程师 工程师
背景情况:
- 由于材料科学和纳米制造的进步,纳米塑料和微流体已经出现了显著的增长.
- 这些领域正在日益融合,导致光子学和其他科学领域的进步.
研究的目的:
- 审查纳米塑料-微流体协同作用的基本原则和关键成果.
- 探索光和流体在小尺度上的相互作用产生的现象,技术和应用.
主要方法:
- 纳米光子学原理的阐明,以表面等离子体-极性子为中心.
- 探索低波长等离子体结构,以超出衍射极限操纵光线.
- 研究集成的等离子体和微/纳米流体系统.
主要成果:
- 纳米流体操纵和捕获单个纳米实体 (分子,纳米粒子) 的演示.
- 为了各种应用,在流体环境中利用光.
- 讨论微流体平台和微流体在等离子纳米结构制造中的光驱制造.
结论:
- 这种协同作用为纳米级光操纵和流体控制提供了无与伦比的功能.
- 未来与金和烯等二维材料的整合将为先进应用提供增强的性能.
- 潜在的创新涉及能源采集,光热癌症治疗和催化过程,如气生成和二氧化碳转化.
相关概念视频
Intermolecular Forces in Solutions
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Surface tension is a fundamental property of fluids, occurring at the boundary between a liquid and a gas or between two immiscible liquids. This phenomenon arises from the cohesive forces between molecules at the fluid's surface, creating an effect similar to a stretched elastic membrane. Inside each fluid, molecules are equally attracted in all directions by neighboring molecules, but surface molecules experience a net inward force, resulting in surface tension.
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Surface tension varies with...


