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具有可调结构和组成的海绵状铁酸盐微多面体的通用绿色合成及形成机理。

Generalized green synthesis and formation mechanism of sponge-like ferrite micro-polyhedra with tunable structure and composition.

机构信息

College of Chemistry and Life Sciences, Zhejiang Normal University, Jinhua 321004, People's Republic of China.

出版信息

Nanoscale. 2014 Jan 21;6(2):778-87. doi: 10.1039/c3nr03745b.

DOI:10.1039/c3nr03745b
PMID:24257742
Abstract

This paper describes a green versatile glucose-engineered precipitation-sintering process that allows for the selective and mass preparation of spongy porous ferrite (M = Fe, Zn, Co, Ni, Mn, etc.) micro-polyhedra with tunable morphology, texture, and composition. Some kinetic factors, such as the molar ratio of glucose to metal nitrates, reaction temperature, sintering temperature and time, and type of metal nitrates, can be expediently employed to modulate their aspect ratio, shape, size, composition, and textural properties. In this protocol, glucose functions as a reductant, protecting agent, structure-directing agent, and a sacrificial template to guide the assembly of sheet-like nuclei into polyhedral precursors and the formation of spongy porous structures. Owing to larger EM parameters, multiresonant behavior, and dissipative current, spongy porous Fe3O4 polyhedra exhibited enhanced microwave-absorbing properties. This endows them with important potential applications in magnetic devices, catalysis, sorption, photoluminescence, electromagnetic wave absorbing materials, anode materials, and so on. Meanwhile, this general approach can be extended to synthesize other porous sponges with regular geometric configuration because it is simple, inexpensive, environmentally benign, and suitable for extensive production.

摘要

本文描述了一种绿色通用的葡萄糖工程沉淀-烧结工艺,可用于选择性地大规模制备具有可调形态、织构和组成的海绵状多孔铁氧体(M = Fe、Zn、Co、Ni、Mn 等)微多面体。一些动力学因素,如葡萄糖与金属硝酸盐的摩尔比、反应温度、烧结温度和时间以及金属硝酸盐的类型,可以方便地用来调节其纵横比、形状、大小、组成和织构性质。在该方案中,葡萄糖作为还原剂、保护剂、结构导向剂和牺牲模板,引导片状核组装成多面体前体并形成海绵状多孔结构。由于较大的电磁参数、多共振行为和耗散电流,海绵状多孔 Fe3O4 多面体表现出增强的微波吸收性能。这使它们在磁性器件、催化、吸附、光致发光、电磁波吸收材料、阳极材料等方面具有重要的潜在应用。同时,由于该方法简单、廉价、环境友好且适合大规模生产,因此可以扩展到合成具有规则几何构型的其他多孔海绵体。

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