Polymorphous WO3 micro- and nanostructures have been synthesized by the controlled Joule heating of tungsten wires under ambient conditions in a few seconds. The growth on the wire surface is assisted by the electromigration process and it is further enhanced by the application of an external electric field through a pair of biased parallel copper plates. In this case, a high amount of WO3 material is also deposited on the copper electrodes, consisting of a few cm(2) area. The temperature measurements of the W wire agrees with the values calculated by a finite element model, which has allowed us to establish the threshold density current to trigger the WO3 growth. The structural characterization of the produced microstructures accounts for the gamma-WO3 (monoclinic I), which is the common stable phase at room temperature, along with low temperature phases, known as delta-WO3 (triclinic) on structures formed on the wire surface and e-WO3 (monoclinic II) on material deposited on external electrodes. These phases allow for a high oxygen vacancies concentration, which is interesting in photocatalysis and sensing applications. The results could help to design experiments to produce oxide nanomaterials from other metal wires by this resistive heating method with scaling-up potential.
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CSIR, Natl Ctr Nanostruct Mat, DST, POB 395, ZA-0001 Pretoria, South AfricaCSIR, Natl Ctr Nanostruct Mat, DST, POB 395, ZA-0001 Pretoria, South Africa
Govender, M.
Mwakikunga, B. W.
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CSIR, Natl Ctr Nanostruct Mat, DST, POB 395, ZA-0001 Pretoria, South AfricaCSIR, Natl Ctr Nanostruct Mat, DST, POB 395, ZA-0001 Pretoria, South Africa
Mwakikunga, B. W.
Mathur, S.
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Univ Cologne, Lehrstuhl Anorgan & Mat Chem, D-50939 Cologne, GermanyCSIR, Natl Ctr Nanostruct Mat, DST, POB 395, ZA-0001 Pretoria, South Africa
Mathur, S.
Singh, T.
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Univ Cologne, Lehrstuhl Anorgan & Mat Chem, D-50939 Cologne, GermanyCSIR, Natl Ctr Nanostruct Mat, DST, POB 395, ZA-0001 Pretoria, South Africa
Singh, T.
Kaouk, A.
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Univ Cologne, Lehrstuhl Anorgan & Mat Chem, D-50939 Cologne, GermanyCSIR, Natl Ctr Nanostruct Mat, DST, POB 395, ZA-0001 Pretoria, South Africa
Kaouk, A.
Goenuellue, Y.
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Univ Cologne, Lehrstuhl Anorgan & Mat Chem, D-50939 Cologne, GermanyCSIR, Natl Ctr Nanostruct Mat, DST, POB 395, ZA-0001 Pretoria, South Africa
Goenuellue, Y.
Machatine, A. G. J.
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Univ Pretoria, Dept Phys, ZA-0002 Pretoria, South AfricaCSIR, Natl Ctr Nanostruct Mat, DST, POB 395, ZA-0001 Pretoria, South Africa
Machatine, A. G. J.
Kunert, H. W.
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Univ Pretoria, Dept Phys, ZA-0002 Pretoria, South AfricaCSIR, Natl Ctr Nanostruct Mat, DST, POB 395, ZA-0001 Pretoria, South Africa
机构:
Nanjing Univ, Inst Acoust, Lab Modern Acoust, Nanjing 210093, Peoples R ChinaNanjing Univ, Inst Acoust, Lab Modern Acoust, Nanjing 210093, Peoples R China
Wang Cheng
Fan Li
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Nanjing Univ, Inst Acoust, Lab Modern Acoust, Nanjing 210093, Peoples R ChinaNanjing Univ, Inst Acoust, Lab Modern Acoust, Nanjing 210093, Peoples R China
Fan Li
Zhang Shu-Yi
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Nanjing Univ, Inst Acoust, Lab Modern Acoust, Nanjing 210093, Peoples R ChinaNanjing Univ, Inst Acoust, Lab Modern Acoust, Nanjing 210093, Peoples R China
Zhang Shu-Yi
Yang Yue-Tao
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Nanjing Univ, Inst Acoust, Lab Modern Acoust, Nanjing 210093, Peoples R ChinaNanjing Univ, Inst Acoust, Lab Modern Acoust, Nanjing 210093, Peoples R China
Yang Yue-Tao
Zhou Ding-Mao
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Nanjing Univ, Inst Acoust, Lab Modern Acoust, Nanjing 210093, Peoples R ChinaNanjing Univ, Inst Acoust, Lab Modern Acoust, Nanjing 210093, Peoples R China
Zhou Ding-Mao
Shui Xiu-Ji
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Nanjing Univ, Inst Acoust, Lab Modern Acoust, Nanjing 210093, Peoples R ChinaNanjing Univ, Inst Acoust, Lab Modern Acoust, Nanjing 210093, Peoples R China