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生物活性多组分纳米功能化工程的关键主要指南用于生物医药和其他应用:直接和间接证据证实的基础模型。

A Key Major Guideline for Engineering Bioactive Multicomponent Nanofunctionalization for Biomedicine and Other Applications: Fundamental Models Confirmed by Both Direct and Indirect Evidence.

机构信息

Textile Engineering Department, Yazd University, Yazd, Iran.

German Institutes of Textile and Fiber Research Denkendorf, Koerschtalstrasse 26, 73770 Denkendorf, Germany.

出版信息

Biomed Res Int. 2017;2017:2867653. doi: 10.1155/2017/2867653. Epub 2017 Nov 29.

DOI:10.1155/2017/2867653
PMID:29333437
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5733208/
Abstract

This paper deals with the engineering multicomponent nanofunctionalization process considering fundamental physicochemical features of nanostructures such as surface energy, chemical bonds, and electrostatic interactions. It is pursued by modeling the surface nanopatterning and evaluating the proposed technique and the models. To this end, the effects of surface modifications of nanoclay on surface interactions, orientations, and final features of TiO/Mt nanocolloidal textiles functionalization have been investigated. Various properties of cross-linkable polysiloxanes (XPs) treated samples as well as untreated samples with XPs have been compared to one another. The complete series of samples have been examined in terms of bioactivity and some physical properties, given to provide indirect evidence on the surface nanopatterning. The results disclosed a key role of the selected factors on the final features of treated surfaces. The effects have been thoroughly explained and modeled according to the fundamental physicochemical features. The developed models and associated hypotheses interestingly demonstrated a full agreement with all measured properties and were appreciably confirmed by FESEM evidence (direct evidence). Accordingly, a guideline has been developed to facilitate engineering and optimizing the pre-, main, and post-multicomponent nanofunctionalization procedures in terms of fundamental features of nanostructures and substrates for biomedical applications and other approaches.

摘要

本文针对工程多组分纳米功能化过程,考虑了纳米结构的基本物理化学特性,如表面能、化学键和静电相互作用。通过对表面纳米图案化进行建模,并对所提出的技术和模型进行评估,实现了这一目标。为此,研究了纳米粘土的表面改性对 TiO/Mt 纳米胶体纺织品功能化的表面相互作用、取向和最终特征的影响。对经交联聚硅氧烷 (XP) 处理和未经 XP 处理的样品的各种性能进行了比较。对完整的样品系列进行了生物活性和一些物理性能的测试,为表面纳米图案化提供了间接证据。结果表明,所选因素对处理表面的最终特征起着关键作用。根据基本物理化学特性,对这些影响进行了深入的解释和建模。所开发的模型和相关假设有趣地表明,它们与所有测量的性能完全一致,并得到 FESEM 证据(直接证据)的明显证实。因此,为便于生物医学应用和其他方法的工程和优化预、主、后多组分纳米功能化过程,根据纳米结构和基底的基本特性,制定了一个指导方针。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d1e/5733208/feaa9dd80bd4/BMRI2017-2867653.007.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d1e/5733208/feaa9dd80bd4/BMRI2017-2867653.007.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d1e/5733208/82c5f2e87c8f/BMRI2017-2867653.001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d1e/5733208/f1f05f39873f/BMRI2017-2867653.002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d1e/5733208/3ff437e857c5/BMRI2017-2867653.003.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d1e/5733208/59cdd3a0f0cb/BMRI2017-2867653.006.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d1e/5733208/feaa9dd80bd4/BMRI2017-2867653.007.jpg

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Interwoven MXene Nanosheet/Carbon-Nanotube Composites as Li-S Cathode Hosts.
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