不同类型有机改性剂对金属氧化物纳米材料形态的修饰。

IF 3.1 4区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Taskiya Akter, Asiful Islam, Abdullah Al Miad, Md Kawcher Alam, Samina Ahmed, Md Sahadat Hossain
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引用次数: 0

摘要

有机改性剂使纳米颗粒更容易融入复合材料组件,改善其光学、机械和电学特性。通过改变纳米颗粒的尺寸、排列、聚集和表面特征,有机改性剂被认为是调节纳米金属氧化物形态的有效途径。这可以通过使用各种有机试剂(如微小配体、各种酸、聚合物等)合成和修饰纳米金属氧化物来评估。根据XRD, FT-IR, BET, SEM和TEM的研究,有机改性剂提高了结晶度,有效地结合到氧化物表面,并引起形态变化,减少团聚,提高表面粗糙度,并暴露出更多的活性面。结果表明,与未经改性的氧化物相比,有机改性剂可显著减少团聚,调节粒径分布,提高结晶度。一般来说,由于材料研究、药物传递、诊断和催化过程等多种原因,使用有机改性剂进行表面改性是使纳米颗粒的有效性最大化所必需的。本文主要介绍了几种应用有机改性剂修饰纳米晶体表面的方法。在这里,我们主要研究了六种金属氧化物(TiO2, Fe3O4, ZnO, Al2O3, CuO, NiO)的结构改性,这些改性剂通常用于各种基于纳米粒子的应用。选择这六种纳米粒子的原因是它们在使用中很常见,并且没有这样的综述论文,其中所有的表面改性信息都是积累的。这项研究的结果将帮助未来的研究人员仔细选择有机改性剂,这些改性剂可以作为一种成功的方法来修饰纳米金属氧化物的形态,以满足技术复杂应用中的特定功能要求。本文还强调了有机改性剂在发展纳米颗粒技术和推动各个科学和工业领域进步方面的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Morphological Modification of Metal Oxide Nanomaterials Using Different Types of Organic Modifiers.

Organic modifiers make incorporating nanoparticles into composite components easier, improving their optical, mechanical, and electrical characteristics. By altering the dimension, arrangement, aggregation, and surface characteristics of the nanoparticles, organic modifiers are thought to be an efficient way to regulate the morphology of nanometal oxides. This can be evaluated by the synthesis and modification of nanometal oxides using various organic agents, such as tiny ligands, various acids, polymers, and so on. Organic modifiers improve crystallinity, bind to oxide surfaces efficiently, and cause morphological changes, reducing agglomeration, raising surface roughness, and exposing more reactive facets according to XRD, FT-IR, BET, SEM, and TEM investigations. In comparison to unmodified oxides, the results showed that organic modifiers greatly decreased agglomeration, regulated particle size distribution, and improved crystallinity. In general, surface modification with organic modifiers is necessary to maximize the effectiveness of nanoparticles for many reasons, such as materials research, drug delivery, diagnosis, and catalytic processes. In this review, we primarily presented several methods for applying organic modifiers to modify the surface of nanocrystals. Here, we mainly focused on the structural modification of six types of metal oxides (TiO2, Fe3O4, ZnO, Al2O3, CuO, NiO) via organic modifiers that are commonly used in various nanoparticle-based applications. The reason behind choosing these six nanoparticles is that they are common in use and there are no such review papers where all the surface modification information is accumulated. The results of this study will assist future researchers in carefully choosing organic modifiers that can be used as a successful method of modifying the morphology of nanometal oxides to satisfy particular functional requirements in technologically sophisticated applications. The importance of organic modifiers in developing nanoparticle technology and propelling advancements in various scientific and industrial fields is also highlighted in this review.

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来源期刊
ChemistryOpen
ChemistryOpen CHEMISTRY, MULTIDISCIPLINARY-
CiteScore
4.80
自引率
4.30%
发文量
143
审稿时长
1 months
期刊介绍: ChemistryOpen is a multidisciplinary, gold-road open-access, international forum for the publication of outstanding Reviews, Full Papers, and Communications from all areas of chemistry and related fields. It is co-owned by 16 continental European Chemical Societies, who have banded together in the alliance called ChemPubSoc Europe for the purpose of publishing high-quality journals in the field of chemistry and its border disciplines. As some of the governments of the countries represented in ChemPubSoc Europe have strongly recommended that the research conducted with their funding is freely accessible for all readers (Open Access), ChemPubSoc Europe was concerned that no journal for which the ethical standards were monitored by a chemical society was available for such papers. ChemistryOpen fills this gap.
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