纳米氧化锆的制备及应用研究进展
Research Progress on Preparation and Application of Nano-Sized Zirconia
DOI: 10.12677/NAT.2021.113012, PDF,    科研立项经费支持
作者: 陈颖鑫, 刘 世凯*, 宋志健, 孙亚光:河南工业大学材料科学与工程学院,河南 郑州;黄 彬:新疆晶硕新材料有限公司,新疆 乌鲁木齐
关键词: 纳米氧化锆形貌调控晶型调控应用 Nano-Zirconia Preparation Application Progress
摘要: 纳米氧化锆(ZrO2)有着优异的物理、化学性能和生物相容性,在生物陶瓷、功能陶瓷、结构陶瓷、电子领域和特种耐火材料等方面得到了广泛应用。其中,如何制备出物相可控、形貌可调、单分散均匀、颗粒尺寸小且稳定性好的纳米氧化锆成为了研究的重点。本文主要对纳米ZrO2粉体不同制备方法的效果进行评述,着重分析影响粉体物相组成和形貌调控的因素,并对其应用进行概括。
Abstract: Nano-zirconia (ZrO2) has excellent physical and chemical properties and biocompatibility, and has been widely used in bioceramics, functional ceramics, structural ceramics, electronics and special refractories. Among them, how to prepare nanometer zirconia with controllable phase, adjustable morphology, uniform monodispersion, small particle size and good stability has become the focus of research. In this paper, the effects of different preparation methods of nano-ZrO2 powders were reviewed, and the factors affecting the phase composition and morphology regulation of the powders were analyzed emphatically, and their applications were summarized.
文章引用:陈颖鑫, 刘世凯, 黄彬, 宋志健, 孙亚光. 纳米氧化锆的制备及应用研究进展[J]. 纳米技术, 2021, 11(3): 93-99. https://doi.org/10.12677/NAT.2021.113012

参考文献

[1] 李苹, 陈卫. 一维纳米材料在能源电催化中的研究进展[J]. 催化学报, 2019, 40(1): 4-22.
[2] Yang, Z., Hu, W., Zhang, N., et al. (2019) Facile Synthesis of Ceria-Zirconia Solid Solutions with Cubic-Tetragonal Interfaces and Their Enhanced Catalytic Performance in Diesel Soot Oxidation. Journal of Catalysis, 377, 98-109. [Google Scholar] [CrossRef
[3] 王金相, 彭楚才, 戴和华, 等. 锆丝电爆炸法制备氧化锆纳米颗粒及其特征[J]. 稀有金属材料与工程, 2019, 48(7): 2118-2121.
[4] 郭红波, 张军, 彭伟涛, 等. 微乳液辅助室温湿固相法制备纳米氧化锆及其表征[J]. 河南科技大学学报(自然科学版), 2010, 31(6): 1-4.
[5] Kumar, A., Siva-kumar, S., Priya, S., et al. (2013) Sol-Gel Synthesis and Optical behavior of Mg-Ce-O Nano-Crystallites. Journal of Sol-Gel Science and Technology, 68, 46-53. [Google Scholar] [CrossRef
[6] 王洋, 汪其堃, 汪超, 等. 辅助溶胶-凝胶法制备纳米氧化锆粉体[J]. 硅酸盐学报, 2020, 48(1): 53-60.
[7] 张晓峰. 氧化锆纳米粉料制备[J]. 洛阳理工学院学报(自然科学版), 2017, 27(1): 4-8.
[8] 吴昊, 史春燕, 付晓辉, 赵婉瑜, 范冰冰, 张锐. 低温水热法制备纳米氧化锆粉体[J]. 硅酸盐通报, 2015, 34(11): 3247-3250.
[9] 李梦萱, 郭英奎, 范国峰, 白晓杰, 张宇. 水热法制备纳米ZrO2粉体的条件[J]. 哈尔滨理工大学学报, 2015, 20(5): 69-73.
[10] 王进新, 夏辉, 周克省, 邓联文, 刘胜, 贺龙辉, 贺君, 杨鹏. 亚微米球形ZrO2颗粒材料的水热法合成及表征[J]. 中国粉体技术, 2017, 23(5): 19-23.
[11] 李文芳, 宋继梅, 陈波, 等. 纳米四方相二氧化锆的水热合成[J]. 安徽大学学报(自然科学版), 2018, 42(6): 93-100.
[12] 何伟艳, 刘进荣, 张赫. 层状液晶模板法制备球形纳米氧化锆[J]. 功能材料, 2015, 46(24): 24105-24110.
[13] 何伟艳, 张赫, 刘进荣. 溶致液晶模板法制备形貌可控的纳米氧化锆[J]. 材料工程, 2016, 44(6): 76-83.
[14] Shi, Y.L. and Wang, W.Q. (2020) 3D Inkjet Printing of the Zirconia Ceramic Implanted Teeth. Materials Letters, 261, 127-131. [Google Scholar] [CrossRef
[15] 陈晓伟. 经表面靶向修饰的纳米二氧化锆载药系统对肝癌细胞线粒体程序化靶向作用的试验研究[D]: [博士学位论文]. 沈阳: 中国医科大学, 2018.
[16] 刘娟, 王香爱, 刘展晴. 纳米ZrO2应用研究进展[J]. 化工科技, 2020, 28(2): 68-71.
[17] Zhang, Y.F., Huang, Y., Lee, S.C. and Cao, J.-J. (2020) The Mechanism of Room Temperature Catalytic C-H Dissociation and Oxygenation of Formaldehyde over Nano-Zirconia Phase-Junction. Chemical Engineering Journal, 380, Article ID: 122498. [Google Scholar] [CrossRef
[18] Sudrajath, B. (2016) Comparison and Mechanism of Pho-tocatalytic Activities N-ZnO and N-ZrO2 for the Degradation of Rhodamine 6G. Environmental Science and Pollution Research, 23, 10177-10188. [Google Scholar] [CrossRef] [PubMed]
[19] Robert, K. (2020) MgO-ZrO2 Refractory Ceramics Based on Re-cycled Magnesia-Carbon Bricks. Construction and Building Materials, 231, Article ID: 117084.
[20] Han, H.J., Kim, T.W., Kim, S., et al. (2017) Fast Initializing Solid State Electrochemical Carbon Dioxide Sensor Fabricated by a Tape Casting Technique Using Yttria Stabilized Zirconia and Sodium Beta Alumina Heterojunction. Sensors & Actuators B: Chemical, 248, 856-861.
[21] 严晓红, 薛滔, 李泽华, 等. 住宅用固体氧化物燃料电池热电联供系统的设计与分析[J]. 可再生能源, 2018, 36(1): 151-158.
[22] Samsudin, A.M. and Hacker, V. (2019) Preparation and Characteriza-tion of PVA/PDDA/Nano-Zirconia Composite Anion Exchange Membranes for Fuel Cells. Polymers, 11, 1399. [Google Scholar] [CrossRef] [PubMed]