0、1、2、3D 纳米结构、块状纳米结构材料类型以及药物纳米晶体:概述

Q3 Medicine
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引用次数: 0

摘要

大块纳米结构材料是将纳米技术与超分子化学、材料科学和生命科学等其他研究领域相结合,从纳米器件中开发出逻辑功能材料的一种研究理念。在这篇综述文章中,根据纳米材料的类型和性质,采用不同的方法合成纳米结构。从广义上讲,"自上而下 "和 "自下而上 "是合成纳米材料的两种主要方法。在 "自上而下 "的方法中,大块材料被还原成纳米材料;而在 "自下而上 "的方法中,纳米材料是从基本层面开始合成的。目前用于合成纳米材料的方法有化学气相沉积法、热分解法、水热合成法、溶热法、脉冲激光烧蚀法、模板法、燃烧法、微波合成法、气相法和传统的溶胶-凝胶法。我们还简要讨论了生产纳米材料的各种物理和化学方法。然后,我们讨论了功能材料在许多领域的应用,如能量存储、超级电容器、传感器、废水处理以及其他生物应用,如药物输送和药物纳米晶体。最后,我们简要讨论了材料纳米结构的未来挑战和进一步开发功能纳米材料的概念。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
0,1,2,3D nanostructures, types of bulk nanostructured materials, and drug nanocrystals: An overview

Functional materials are required to meet the needs of society, such as environmental protection, energy storage and conversion, integrated product production, biological and medical processing. bulk nanostructured materials are a research concept that combines nanotechnology with other research fields such as supramolecular chemistry, materials science, and life science to develop logically functional materials from nanodevices. In this review article, nanostructures are synthetized by different methods based on the types and nature of the nanomaterials. In a broad sense “top-down” and “bottom-up” are the two foremost methods to synthesize nanomaterials. In top-down method bulk materials have been reduced to nanomaterials, and in case of bottom-up method, the nanomaterials are synthesized from elementary level. The different methods which are being used to synthesize nanomaterials are chemical vapor deposition method, thermal decomposition, hydrothermal synthesis, solvothermal method, pulsed laser ablation, templating method, combustion method, microwave synthesis, gas phase method, and conventional Sol-Gel method. We also briefly discuss the various physical and chemical methods for producing nanomaterials. We then discuss the applications of functional materials in many areas such as energy storage, supercapacitors, sensors, wastewater treatment, and other biological applications such as drug delivery and drug nanocrystals. Finally, future challenges in materials nanoarchitecture and concepts for further development of functional nanomaterials are briefly discussed.

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来源期刊
CiteScore
4.30
自引率
0.00%
发文量
148
审稿时长
56 days
期刊介绍: Cancer Treatment and Research Communications is an international peer-reviewed publication dedicated to providing comprehensive basic, translational, and clinical oncology research. The journal is devoted to articles on detection, diagnosis, prevention, policy, and treatment of cancer and provides a global forum for the nurturing and development of future generations of oncology scientists. Cancer Treatment and Research Communications publishes comprehensive reviews and original studies describing various aspects of basic through clinical research of all tumor types. The journal also accepts clinical studies in oncology, with an emphasis on prospective early phase clinical trials. Specific areas of interest include basic, translational, and clinical research and mechanistic approaches; cancer biology; molecular carcinogenesis; genetics and genomics; stem cell and developmental biology; immunology; molecular and cellular oncology; systems biology; drug sensitivity and resistance; gene and antisense therapy; pathology, markers, and prognostic indicators; chemoprevention strategies; multimodality therapy; cancer policy; and integration of various approaches. Our mission is to be the premier source of relevant information through promoting excellence in research and facilitating the timely translation of that science to health care and clinical practice.
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