无机材料学报 ›› 2013, Vol. 28 ›› Issue (5): 459-468.DOI: 10.3724/SP.J.1077.2013.12506 CSTR: 32189.14.SP.J.1077.2013.12506
• • 下一篇
鲍 艳, 杨永强, 马建中
收稿日期:
2012-08-17
修回日期:
2012-12-07
出版日期:
2013-05-10
网络出版日期:
2013-04-22
作者简介:
鲍 艳(1981–), 女, 副教授. E-mail: baoyan0611@126.com
基金资助:
BAO Yan, YANG Yong-Qiang, MA Jian-Zhong
Received:
2012-08-17
Revised:
2012-12-07
Published:
2013-05-10
Online:
2013-04-22
About author:
BAO Yan. E-mail: baoyan0611@126.com
Supported by:
摘要:
中空结构材料具有低密度、高比表面积、可以容纳客体分子等特点被广泛用于环境保护、生物医药、电子等领域。模板法具有简单、重复率高、预见性好等诸多优点, 在制备中空结构材料的过程中被广泛采用。根据所使用模板性质的不同, 模板法又可分为传统模板法和自模板法两类。本文对模板法制备中空结构材料的研究进行了综述, 首先阐述了硬模板法和软模板法两种传统模板法制备中空结构材料的研究进展, 并在此基础上重点综述和评价了奥斯特瓦尔德熟化法、柯肯达尔效应法、电化学置换法和化学刻蚀法四种自模板法制备中空结构材料的研究进展, 最后, 对模板法制备中空结构材料的发展前景进行了展望。
中图分类号:
鲍 艳, 杨永强, 马建中. 模板法制备中空结构材料的研究进展[J]. 无机材料学报, 2013, 28(5): 459-468.
BAO Yan, YANG Yong-Qiang, MA Jian-Zhong. Research Progress of Hollow Structural Materials Prepared via Templating Method[J]. Journal of Inorganic Materials, 2013, 28(5): 459-468.
图3 Ostwald熟化按(a)对称及(b)不对称机理制备中空结构的示意图[18]
Fig. 3 A diagram of the preparation of hollow structures via Ostwald ripening based on (a) symmetric and (b) asymmetric mechanism[18]
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