CN101823766A - 具有纳米孔结构的氧化铪粉体的制备方法 - Google Patents

具有纳米孔结构的氧化铪粉体的制备方法 Download PDF

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CN101823766A
CN101823766A CN 201010182563 CN201010182563A CN101823766A CN 101823766 A CN101823766 A CN 101823766A CN 201010182563 CN201010182563 CN 201010182563 CN 201010182563 A CN201010182563 A CN 201010182563A CN 101823766 A CN101823766 A CN 101823766A
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hafnium oxide
oxide powder
preparation
porous structure
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CN101823766B (zh
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魏春城
田贵山
冯柳
孟凡涛
周立娟
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Shandong University of Technology
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Shandong University of Technology
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Abstract

本发明提供一种具有纳米孔结构的氧化铪粉体的制备方法,属于纳米粉体材料领域。其特征在于:采用固相法,以四氯化铪和苯甲酸为原料,按摩尔比1∶2~4将两者混合,球磨均匀,然后在500~800℃煅烧2h,即得具有纳米孔结构的氧化铪粉体,孔径为50~100nm,氧化铪颗粒为20~100nm。本发明工艺简单,操作安全,效率高,合成的纳米氧化铪粉体具有较大的比表面积。

Description

具有纳米孔结构的氧化铪粉体的制备方法
技术领域
本发明提供一种具有纳米孔结构的氧化铪粉体的制备方法,属于纳米粉体材料领域。
背景技术
目前,氧化铪材料已被用于快离子导体燃料电池、氧传感器、红外窗口保护膜、原子反应堆的控制棒、催化剂等领域。其中HfO2溅射薄膜由于具有高介电常数、高介电强度、低介电损耗、低漏电流及良好的电容-电压特性、良好的稳定性以及能与基体硅的牢固结合等优点,被认为是最有前途的新型绝缘介质膜之一。二氧化铪用作催化剂时,若赋予其发达的孔隙结构不仅有利于电荷在相间的传递,改善其电荷传导性能,同时,也可以减小反应物分子或产物分子在催化剂中的扩散阻力,改善其催化反应性能。但常规的二氧化铪热稳定性差、比表面小、孔隙欠发达,孔径大小变化无规律等,限制了其优良性能的发挥。
发明内容
本发明的目的是提供一种工艺简单、操作安全、不造成污染、具有纳米孔结构的氧化铪粉体的制备方法,其技术方案为:
采用固相法,以四氯化铪和苯甲酸为原料,按摩尔比1∶2~4将两者混合,球磨均匀,然后在500~800℃煅烧2h,即得具有纳米孔结构的氧化铪粉体,孔径为50~100nm,氧化铪颗粒为20~100nm。
本发明与现有技术相比,具有如下优点:
1、本发明采用固相反应法合成纳米孔结构的氧化铪粉体,效率高,操作简单,安全;
2、本发明制备的氧化铪粉体具有三维网络结构及均匀的纳米孔洞,使其具有较大的比表面积;
3、本发明制备的氧化铪粉体具有三维网络结构,其骨架为20~100nm的氧化铪颗粒,纳米颗粒具有较高的分散性。
附图说明
图1是本发明实施例在700℃煅烧后的XRD谱;
图2是本发明实施例在700℃煅烧后的SEM照片。
具体实施方式
实施例1
以四氯化铪和苯甲酸为原料,按摩尔比1∶2将两者混合,球磨均匀,然后在700℃煅烧2h,即得具有纳米孔结构的氧化铪粉体。
通过XRD测试,可见粉体晶体类型为单斜相(见图1);通过SEM测试,可见氧化铪粉体具有三维网络,孔径为50~100nm,骨架颗粒为20~100nm(见图2)。
实施例2
以四氯化铪和苯甲酸为原料,按摩尔比1∶3将两者混合,球磨均匀,然后在500℃煅烧2h,即得具有纳米孔结构的氧化铪粉体。
实施例3
以四氯化铪和苯甲酸为原料,按摩尔比1∶4将两者混合,球磨均匀,然后在800℃煅烧2h,即得具有纳米孔结构的氧化铪粉体。

Claims (1)

1.一种具有纳米孔结构的氧化铪粉体的制备方法,其特征在于:采用固相法,以四氯化铪和苯甲酸为原料,按摩尔比1∶2~4将两者混合,球磨均匀,然后在500~800℃煅烧2h,即得具有纳米孔结构的氧化铪粉体,孔径为50~100nm,氧化铪颗粒为20~100nm。
CN2010101825639A 2010-05-17 2010-05-17 具有纳米孔结构的氧化铪粉体的制备方法 Expired - Fee Related CN101823766B (zh)

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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20150234272A1 (en) * 2014-02-14 2015-08-20 Intel Corporation Metal oxide nanoparticles and photoresist compositions
CN105948117A (zh) * 2016-04-28 2016-09-21 东华大学 一种以水热法制备HfO2纳米颗粒的方法
CN106082325A (zh) * 2016-06-14 2016-11-09 东华大学 一种通过调节碱的浓度制备不同晶型纳米二氧化铪颗粒的方法
CN108815137A (zh) * 2018-08-24 2018-11-16 浙江大学 一种具有放疗增敏的氧化铪(HfO2)纳米颗粒的制备方法

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1733610A (zh) * 2005-04-18 2006-02-15 江苏大学 以羧酸为修饰剂低温制备金红石型纳米Ti02的方法
US7393518B2 (en) * 2003-03-27 2008-07-01 National Central University Zirconia sol and method for preparing the same

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7393518B2 (en) * 2003-03-27 2008-07-01 National Central University Zirconia sol and method for preparing the same
CN1733610A (zh) * 2005-04-18 2006-02-15 江苏大学 以羧酸为修饰剂低温制备金红石型纳米Ti02的方法

Non-Patent Citations (7)

* Cited by examiner, † Cited by third party
Title
《Ceramics International》 19961231 A.Lakhlifi et al. Preliminary Results on Preparation and Sintering Behaviour of Hafnia Powders 349-359 1 , 第23期 2 *
《Journal of Materials Chemistry》 20090907 Orb Acton et al. pi-sigma-Phosphonic acid organic monolayer-amorphous sol-gel hafnium oxide hybrid dielectric for low-voltage organic transistors on plastic 7929-7939 1 第19卷, 2 *
《中国博士学位论文全文数据库 工程科技I辑》 20060215 杨定明 纳米级稀土发光材料的制备及发光性能研究 第18-21,32页 1 , 第2期 2 *
《中国稀土学报》 20031231 庄稼等 机械力固相化学反应合成纳米氧化铈 75-77 1 第21卷, 2 *
《中国陶瓷》 20090731 魏春城等 纳米氧化铪粉体的制备及表征 20-22 1 第45卷, 第7期 2 *
《化学世界》 20051231 宋力等 制备纳米二氧化锆的新方法 402-405 1 , 第7期 2 *
《稀有金属快报》 20071231 蒋丹宇 铪化合物在先进陶瓷中的应用 22-27 1 第26卷, 第1期 2 *

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20150234272A1 (en) * 2014-02-14 2015-08-20 Intel Corporation Metal oxide nanoparticles and photoresist compositions
CN105948117A (zh) * 2016-04-28 2016-09-21 东华大学 一种以水热法制备HfO2纳米颗粒的方法
CN106082325A (zh) * 2016-06-14 2016-11-09 东华大学 一种通过调节碱的浓度制备不同晶型纳米二氧化铪颗粒的方法
CN108815137A (zh) * 2018-08-24 2018-11-16 浙江大学 一种具有放疗增敏的氧化铪(HfO2)纳米颗粒的制备方法

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