Ferreira Vanessa R A, Azenha Manuel A
CIQUP-Institute of Molecular Sciences, Departamento de Química e Bioquímica, Faculdade de Ciências da Universidade do Porto, Rua do Campo Alegre, 4169-007 Porto, Portugal.
Molecules. 2024 Mar 5;29(5):1154. doi: 10.3390/molecules29051154.
Micro/nanomotors represent a burgeoning field of research featuring small devices capable of autonomous movement in liquid environments through catalytic reactions and/or external stimuli. This review delves into recent advancements in light-driven semiconductor-based micro/nanomotors (LDSM), focusing on optimized syntheses, enhanced motion mechanisms, and emerging applications in the environmental and biomedical domains. The survey commences with a theoretical introduction to micromotors and their propulsion mechanisms, followed by an exploration of commonly studied LDSM, emphasizing their advantages. Critical properties affecting propulsion, such as surface features, morphology, and size, are presented alongside discussions on external conditions related to light sources and intensity, which are crucial for optimizing the propulsion speed. Each property is accompanied by a theoretical background and conclusions drawn up to 2018. The review further investigates recent adaptations of LDSM, uncovering underlying mechanisms and associated benefits. A brief discussion is included on potential synergistic effects between different external conditions, aiming to enhance efficiency-a relatively underexplored topic. In conclusion, the review outlines emerging applications in biomedicine and environmental monitoring/remediation resulting from recent LDSM research, highlighting the growing significance of this field. The comprehensive exploration of LDSM advancements provides valuable insights for researchers and practitioners seeking to leverage these innovative micro/nanomotors in diverse applications.
微纳马达代表了一个新兴的研究领域,其特点是小型装置能够通过催化反应和/或外部刺激在液体环境中自主运动。本综述深入探讨了基于光驱动的半导体微纳马达(LDSM)的最新进展,重点关注优化合成、增强运动机制以及在环境和生物医学领域的新兴应用。综述首先对微马达及其推进机制进行理论介绍,接着探讨常见的LDSM,强调其优势。介绍了影响推进的关键特性,如表面特征、形态和尺寸,同时讨论了与光源和强度相关的外部条件,这些条件对于优化推进速度至关重要。每个特性都伴有理论背景以及截至2018年得出的结论。综述进一步研究了LDSM的最新适应性,揭示其潜在机制和相关益处。还简要讨论了不同外部条件之间潜在的协同效应,旨在提高效率——这是一个相对未被充分探索的主题。总之,综述概述了近期LDSM研究在生物医学和环境监测/修复方面的新兴应用,凸显了该领域日益增长的重要性。对LDSM进展的全面探索为寻求在各种应用中利用这些创新微纳马达的研究人员和从业者提供了有价值的见解。