无机材料学报 ›› 2019, Vol. 34 ›› Issue (2): 121-129.DOI: 10.15541/jim20180277
• 综述 • 下一篇
万宇驰1,2,湛菁1,陈军1
收稿日期:
2018-06-22
修回日期:
2018-10-07
出版日期:
2019-02-20
网络出版日期:
2019-01-24
作者简介:
万宇驰(1995-),男,博士研究生. E-mail: wanyc18@mails.tsinghua.edu.cn
基金资助:
WAN Yu-Chi1,2, ZHAN Jing1, CHEN Jun1
Received:
2018-06-22
Revised:
2018-10-07
Published:
2019-02-20
Online:
2019-01-24
About author:
WAN Yu-Chi. E-mail: wanyc18@mails.tsinghua.edu.cn
Supported by:
摘要:
纳米NiCo2O4因其独特的理化性能已广泛应用于能源储存与转换, 尤其是超级电容器领域。鉴于纳米材料的形貌对其性能的重要影响, 本文综述了不同形貌(纳米针、纳米线、纳米管、纳米片、球状、纳米花、珊瑚状及三维复合结构)纳米NiCo2O4的合成方法及其在相关领域的应用, 叙述了各种制备方法的基本原理、特点以及对纳米NiCo2O4形貌的调控规律。同时, 简要说明了材料形貌与尺寸对其性能影响的机理及规律。最后, 展望了纳米NiCo2O4在能源储存与转换领域中未来的发展方向。
中图分类号:
万宇驰,湛菁,陈军. 不同形貌纳米NiCo2O4的研究进展[J]. 无机材料学报, 2019, 34(2): 121-129.
WAN Yu-Chi, ZHAN Jing, CHEN Jun. Preparation of NiCo2O4 with Various Morphologies: a Review[J]. Journal of Inorganic Materials, 2019, 34(2): 121-129.
图1 水热法制备NiCo2O4微球煅烧(a)前(b)~(c)后的SEM照片; (d) NiCo2O4粉末XRD图谱[34]
Fig. 1 SEM images of NiCo2O4 microsphere prepared by hydrothermal method: (a) before and (b, c) after calcination with (d) XRD patterns of NiCo2O4 powders[34]
图2 Ni/Co摩尔比为 (a) 1 : 0、 (b) 7 : 3、(c) 5 : 5、(d) 3 : 7和(e)~(f) 0 : 1的花状结构镍钴氧化物的SEM照片[43]
Fig. 2 SEM images of flower-like nickel-cobalt oxides prepared with initial Ni/Co molar ratio of (a) 1 : 0, (b) 7 : 3, (c) 5 : 5, (d) 3 : 7 and (e, f) 0 : 1[43]
图3 (a)~(b) 微波辅助法获得的花状NiCo2O4的SEM照片, (c) 花状形貌形成过程示意图[46]
Fig. 3 (a, b) SEM images of flower-shaped NiCo2O4 prepared by microwave-assisted approach, (c) schematic illustration of the morphological evolution of flower-shaped microsphere precursors[46]
图4 (a)~(b) N-CNT/NiCo2O4 纳米片的TEM照片和 (c) N- CNT/NiCo2O4的制备过程示意图[57]
Fig. 4 (a, b) TEM images of the N-CNT/NiCo2O4 nanosheets, (c) schematic diagram of the fabrication process of N-CNT/ NiCo2O4[57]
图6 电沉积法制备的NiCo2O4纳米片在煅烧(a)~(b)前、(c)~(d)后的SEM照片; (e)NiCo2O4纳米片上电子与离子传递示意图[71]
Fig. 6 SEM images of NiCo2O4 nanosheets prepared by electrodeposition: (a, b) before and (c, d) after calcination, and (e) schematic illustration of the transportation of species on porous NiCo2O4 nanosheets[71]
图7 碳基NiCo2O4纳米线阵列前驱体的(a)低倍和(b)高倍SEM照片; 碳基NiCo2O4纳米线阵列的(c)低倍和(d)高倍SEM照片; (e)碳基NiCo2O4纳米线阵列的合成示意图[81]
Fig. 7 SEM images of the NiCo2O4 precursor NWAs/carbon textiles composite: (a) low and (b) high magnification, SEM images of the NiCo2O4 NWAs/carbon textiles composite: (c) low and (d) high magnification, and (e) schematic illustration of the formation of NiCo2O4 NWAs/carbon textiles composite[81]
图8 (a)~(b)NiCo2O4纳米管SEM照片, (c)NiCo2O4纳米管、纳米线、纳米环的制备过程示意图[86]
Fig. 8 (a, b) SEM images of the NiCo2O4 nanotubes and (c) schematic illustration of preparation of NiCo2O4 nanofibers, nanotubes and nanobelts[86]
图9 不同反应时间得到NiCo2O4样品的TEM照片: (a) 4 h, (b) 6 h, (c) 10 h, (d) 12 h; (e) NiCo2O4分层四方微管制备过程示意图[87]
Fig. 9 Representative TEM images of the samples obtained after reaction for (a) 4 h, (b) 6 h, (c) 10 h, (d) 12 h and (e) their corresponding schematic illustration of the formation process for hierarchical NiCo2O4 tetragonal microtubes[87]
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