材料科学
复合数
材料加工
纳米颗粒
聚合物
化学成分
工业化学
化学工程
复合材料
纳米技术
工艺工程
有机化学
生化工程
化学
工程类
作者
Gabriela Calin,Liliana Sachelarie,Niculae Olaru
标识
DOI:10.24425/amm.2022.137796
摘要
Influence of SyntheSIS condItIonS on the chemIcal Structure and compoSItIon of Zno nanopartIcleS compoSIte SyStemS / polymer fIberS nanostructured systems based on ZnO nanoparticles composite systems/polymer fibers have attracted a lot of attention in the last years because of their applications in multiple areas.nanofibres based on polymers are used in many domains such as nanocatalysis, controlled release of medicines, environmental protection and so on.This work show the synthesis of cellulose acetate butyrate (CaB) nanofiber useful as substrates for growing ZnO nanocrystals and that ZnO is an unorganic metal oxide nanoparticle used to improve the piezoelectric properties of the polymer.The piezoelectric propertiesof ZnO-doped polymeric was investigated with atomic force microscopy and measurements were performed, in contact technique, in piezoelectric response mode (PFM).inorder to analyze the structural and textural features, the obtained materials were characterized using advanced physical-chemical techniques such as X-ray diffraction (XrD), atomic Force Microscopy (aFM), Scanning electron Microscopy (SeM).The XrD patterns show the characteristic reflections of ZnO with a hexagonal type wurtzit structure and the broad peaks of the polymer.The SeM images reveal the presence of ZnO nanoparticles on top of the polymer nanofibres.inmost ZnO-based nanocomposites their morphology is uncontrolled (agglomerated granules), but in ase of using cellulose acetobutyrate this becomes controlled by observing through flower-like structures SeM and aFM) The study of the functional properties of ZnO/polymer fiber composite systems showed that they have piezoelectric properties which give them the characteristics of smart material with possible sensor and actuator applications.recentliterature reports that the synthesis and characterization of ZnO-polymer nanocomposites are more flexible materials for various applications.
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