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利用声化学制备纳米材料。

Using sonochemistry for the fabrication of nanomaterials.

作者信息

Gedanken Aharon

机构信息

Department of Chemistry, Bar-Ilan University, Ramat-Gan 52900, Israel.

出版信息

Ultrason Sonochem. 2004 Apr;11(2):47-55. doi: 10.1016/j.ultsonch.2004.01.037.

DOI:10.1016/j.ultsonch.2004.01.037
PMID:15030779
Abstract

One of the reasons for the huge interest in nanomaterials originated because of the prohibitive price that commercial companies have to pay for introducing new materials into the market. Nanotechnology enables these companies to obtain new properties using old and recognized materials by just reducing their particle size. For these known materials no government approval has to be obtained. Thus, the interest in nanomaterials has led to the development of many synthetic methods for their fabrication. Sonochemistry is one of the earliest techniques used to prepare nanosized compounds. Suslick, in his original work, sonicated Fe(CO)5 either as a neat liquid or in a decalin solution and obtained 10-20 nm size amorphous iron nanoparticles. A literature search that was conducted by crossing Sono* and Nanop* has found that this area is expanding almost exponentially. It started with two papers published in 1994, two in 1995, and increased to 59 papers in 2002. A few authors have already reviewed the fields of Sono and Nano. It should be mentioned that in 1996, Suslick et al. published an early review on the nanostructured materials generated by ultrasound radiation. Suslick and Price have also reviewed the application of ultrasound to materials science. This review dealt with nanomaterials, but was not directed specifically to this topic. The review concentrated only on the sonochemistry of transition metal carbonyls and catalytic reactions that involve the nanoparticles resulting from their sonochemical decomposition. Grieser and Ashokkumar have also written a review on a similar topic. A former coworker, Zhu, has recently submitted for publication a review article entitled "Novel Methods for Chemical Preparation of Metal Chalcogenide Nanoparticles" in which he reviews three synthetic methods (sonochemistry, sonoelectrochemistry, and microwave heating) and their application in the synthesis of nanosized metal chalcogenides. Although still unpublished, I myself have recently written a review discussing novel methods (sonochemistry, microwave heating, and sonoelectrochemistry) for making nanosized materials. The current review will: (1) Present the four main advantages that sonochemistry has over other methods related to materials science and nanochemistry; (2) concentrate on the more recent (2003) literature that was not reviewed in the previously-mentioned reviews, and (3) focus on a specific question, such as what is the typical shape of products obtained in sonochemistry? This review will not survey the literature related to sonoelectrochemistry.

摘要

对纳米材料产生巨大兴趣的原因之一是商业公司将新材料推向市场所需支付的高昂价格。纳米技术使这些公司能够通过仅仅减小已知材料的粒径来获得新特性。对于这些已知材料,无需获得政府批准。因此,对纳米材料的兴趣促使人们开发了许多用于其制备的合成方法。声化学是最早用于制备纳米级化合物的技术之一。苏斯利克在其最初的工作中,将五羰基铁作为纯液体或在萘烷溶液中进行超声处理,得到了尺寸为10 - 20纳米的非晶态铁纳米颗粒。通过交叉搜索“Sono*”和“Nanop*”进行的文献检索发现,该领域几乎呈指数级扩展。它始于1994年发表的两篇论文,1995年为两篇,到2002年增加到59篇。一些作者已经对声化学和纳米技术领域进行了综述。应该提到的是,1996年苏斯利克等人发表了一篇关于超声辐射产生的纳米结构材料的早期综述。苏斯利克和普赖斯也对超声在材料科学中的应用进行了综述。这篇综述涉及纳米材料,但并非专门针对这个主题。该综述仅集中在过渡金属羰基化合物的声化学以及涉及由其声化学分解产生的纳米颗粒的催化反应上。格里泽和阿肖克库马尔也写了一篇关于类似主题的综述。我以前的同事朱最近提交了一篇题为《金属硫族化物纳米颗粒化学制备的新方法》的综述文章,其中他综述了三种合成方法(声化学、声电化学和微波加热)及其在纳米级金属硫族化物合成中的应用。虽然尚未发表,但我自己最近写了一篇综述,讨论了制备纳米级材料的新方法(声化学、微波加热和声电化学)。本综述将:(1)阐述声化学相对于与材料科学和纳米化学相关的其他方法所具有的四个主要优势;(2)关注在上述综述中未涉及的更新的(2003年)文献;(3)聚焦于一个特定问题,例如声化学中获得的产物的典型形状是什么?本综述将不涉及与声电化学相关的文献。

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