Investigations of Electro-hydrothermally Grown ZnO Nanostructures on Copper Grids

被引:0
|
作者
Yu, Tzu-Yi [1 ]
Hung, Chen Hao [2 ]
Lee, Yu Shan [2 ]
Lin, Chia Feng [3 ]
Su, Wei Min [2 ]
Lu, Chien-Cheng [2 ]
Weng, Cheng-Yuan [2 ]
Wu, Yewchung Sermon [4 ]
Wu, Pei Yu [4 ]
Chen, Hsiang [2 ]
机构
[1] Natl Chi Nan Univ, Dept Informat Management, Nantou, Taiwan
[2] Natl Chi Nan Univ, Dept Appl Mat & Optoelect Engn, Nantou, Taiwan
[3] Natl Chung Hsing Univ, Dept Mat Sci & Engn, Taichung, Taiwan
[4] Natl Chiao Tung Univ, Dept Mat Sci & Engn, Hsinchu, Taiwan
关键词
electro-hydrothermal; copper grids; nanoflowers; nanorods; grid holes; ZINC-OXIDE NANORODS; SUBSTRATE; SILICON; ARRAYS;
D O I
暂无
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Two types of ZnO nanostructures were electro-hydrothermally deposited on mesh 100 and 200 copper grids. To investigate the nanostructures, multiple material analyses were used to analyze the material properties. FESEM images indicate that nanoflowers/nanorods could be grown on the mesh 100 copper grids while a single layer of ZnO nanorods could be grown on the mesh 200 copper grids. Since the size of the grid holes might influence the chemical reactions during the growth of the nanostructures, all the other material analyzes also reveale1 distinct material characteristics of these two types of nanostructures on the copper grid. Based on the experimental results, modulating the ZnO nanostructure will be helpful for future applications of ZnO nanostructures on copper substrates.
引用
收藏
页码:71 / 75
页数:5
相关论文
共 50 条
  • [1] Hydrothermally Grown ZnO Nanostructures for Water Purification via Photocatalysis
    Le Pivert, Marie
    Martin, Nathan
    Leprince-Wang, Yamin
    CRYSTALS, 2022, 12 (03)
  • [2] Structural, optical and ferroelectric behavior of hydrothermally grown ZnO nanostructures
    Chand, Prakash
    Gaur, Anurag
    Kumar, Ashavani
    SUPERLATTICES AND MICROSTRUCTURES, 2013, 64 : 331 - 342
  • [3] SURFACE MODIFICATION OF HYDROTHERMALLY GROWN ZnO NANOSTRUCTURES WITH PROCESS PARAMETERS
    Kar, J. P.
    Das, S. N.
    Lee, S. W.
    Ham, M. H.
    Choi, J. H.
    Myoung, J. M.
    CHEMICAL ENGINEERING COMMUNICATIONS, 2009, 196 (09) : 1130 - 1138
  • [4] Effect of solution molarity on properties of hydrothermally grown ZnO nanostructures
    Chen, Yi
    Chen, Wei-You
    Hsu, Hung-Pin
    Lee, Jiunn-Chyi
    Wu, Ya-Fen
    2ND INTERNATIONAL CONFERENCE ON ENERGY MATERIALS AND APPLICATIONS (ICEMA2017), 2017, 222
  • [5] Hydrothermally grown ZnO nanostructures on few-layer graphene sheets
    Kim, Yong-Jin
    Hadiyawarman
    Yoon, Aram
    Kim, Miyoung
    Yi, Gyu-Chul
    Liu, Chunli
    NANOTECHNOLOGY, 2011, 22 (24)
  • [6] Absorption-emission study of hydrothermally grown Al:ZnO nanostructures
    Yogamalar, N. Rajeswari
    Bose, A. Chandra
    JOURNAL OF ALLOYS AND COMPOUNDS, 2011, 509 (34) : 8493 - 8500
  • [7] Morphology Control of Hydrothermally Grown ZnO Nanostructures by Additives and Seed Layers
    Lee, Daeho
    Kim, Il Tae
    Hur, Jaehyun
    JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2017, 17 (10) : 7641 - 7646
  • [8] Morphology evolution of hydrothermally grown ZnO nanostructures on gallium doping and their defect structures
    Pineda-Hernandez, G.
    Escobedo-Morales, A.
    Pal, U.
    Chigo-Anota, E.
    MATERIALS CHEMISTRY AND PHYSICS, 2012, 135 (2-3) : 810 - 817
  • [9] Hydrothermally Grown Copper-Doped ZnO Nanorods on Flexible Substrate
    Ajmal, Hafiz Muhammad Salman
    Khan, Waqar
    Khan, Fasihullah
    Huda, Noor-ul
    Kim, Sam-Dong
    JOURNAL OF NANOELECTRONICS AND OPTOELECTRONICS, 2019, 14 (11) : 1503 - 1511
  • [10] Effect of electric field and postgrowth annealing on the morphology and crystallinity of hydrothermally grown ZnO nanostructures
    Wang, Dong
    Meng, Xianquan
    Chen, Zhiquan
    Fu, Qiang
    PHYSICA E-LOW-DIMENSIONAL SYSTEMS & NANOSTRUCTURES, 2008, 40 (04): : 852 - 858