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纳米材料合成的基本原理、性质以及对液体中激光烧蚀的重点:简要综述。

The fundamentals of synthesis of the nanomaterials, properties, and emphasis on laser ablation in liquids: a brief review.

作者信息

Krishna Podagatlapalli G

机构信息

Department of Physics, GSS, GITAM Deemed to Be University, Visakhapatnam, 530045, India.

出版信息

Discov Nano. 2025 Jun 24;20(1):98. doi: 10.1186/s11671-025-04235-5.

Abstract

Materials whose dimensions are less than 100 nm of diverse sizes and different shapes of the metal/semiconductor/insulator particles are known as nanomaterials. Nanomaterials exhibit very peculiar thermal, mechanical, electrical, optical, and chemical properties compared to their bulk counterparts. When a bulk material is chopped to a nano-dimension, electrons are subjected to peculiar boundary conditions, eventually leading to the nanomaterials' special properties. Due to their exceptional properties, nanomaterials have unique applications in all branches of science. Consequently, the researchers explored many methods of synthesis of the nanomaterials. However, each method has its advantages and disadvantages, some methods are flexible in synthesizing nanoparticles with uniform size distribution and some are feasible to produce nanomaterials at higher yields. Different methods follow their own synthesis protocols, time durations, economical feasibility, and reproducibility. Most methods complement one another by producing nanomaterials of evenly distributed sizes, shapes, properties, etc. Amongst, the, laser ablation of metals/semiconductors/insulators immersed in a liquid medium is a well-known method of green synthesis of nanomaterials that utilizes no hazardous chemical precursors. Laser ablation in liquids (LAL) combines top-down and bottom-up approaches that do not require lengthy sample preparations, chemical surfactants, and sophisticated experimental methodologies. The physical processes involved in the LAL of different metals/semiconductors are discussed briefly. Additionally, the applications of nanomaterials in various fields of science are included and the review is concluded with the challenges and the future scope of LAL.

摘要

尺寸小于100纳米、具有不同尺寸和形状的金属/半导体/绝缘体颗粒的材料被称为纳米材料。与它们的块状对应物相比,纳米材料表现出非常独特的热、机械、电、光学和化学性质。当块状材料被切割成纳米尺寸时,电子会受到特殊的边界条件影响,最终导致纳米材料具有特殊性质。由于其特殊性质,纳米材料在科学的各个分支中都有独特的应用。因此,研究人员探索了许多合成纳米材料的方法。然而,每种方法都有其优缺点,一些方法在合成尺寸分布均匀的纳米颗粒方面具有灵活性,而一些方法在高产率生产纳米材料方面是可行的。不同的方法遵循各自的合成方案、时间跨度、经济可行性和可重复性。大多数方法通过生产尺寸、形状、性质等分布均匀的纳米材料相互补充。其中,将金属/半导体/绝缘体浸入液体介质中进行激光烧蚀是一种著名的绿色合成纳米材料的方法,该方法不使用有害化学前驱体。液体中的激光烧蚀(LAL)结合了自上而下和自下而上的方法,不需要冗长的样品制备、化学表面活性剂和复杂的实验方法。简要讨论了不同金属/半导体在LAL过程中涉及的物理过程。此外,还介绍了纳米材料在各个科学领域的应用,并以LAL面临的挑战和未来发展前景作为综述的结尾。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9596/12187634/e672b601b8bb/11671_2025_4235_Fig1_HTML.jpg

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