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Preparation of Copper Nanoparticles Using Dielectric Barrier Discharge at Atmospheric Pressure and its Mechanism
引用本文:底兰波,张秀玲,徐志坚. Preparation of Copper Nanoparticles Using Dielectric Barrier Discharge at Atmospheric Pressure and its Mechanism[J]. 等离子体科学和技术, 2014, 0(1): 41-44
作者姓名:底兰波  张秀玲  徐志坚
基金项目:supported by National Natural Science Foundation of China(No.21173028);the Science and Technology Research Project of Liaoning Provincial Education Department of China(No.L2013464);the Scientific Research Foundation for the Doctor of Liaoning Province of China(No.20131004)
摘    要:Dielectric barrier discharge (DBD) cold plasma at atmospheric pressure was used for preparation of copper nanoparticles by reduction of copper oxide (CuO). Power X-ray diffraction (XRD) was used to characterize the structure of the copper oxide samples treated by DBD plasma. Influences of H2 content and the treating time on the reduction of copper oxide by DBD plasma were investigated. The results show that the reduction ratio of copper oxide was increased initially and then decreased with increasing H2 content, and the highest reduction ratio was achieved at 20% H2 content. Moreover, the copper oxide samples were gradually reduced by DBD plasma into copper nanoparticles with the increase in treating time. However, the average reduction rate was decreased as a result of the diffusion of the active hydrogen species. Optical emission spectra (OES) were observed during the reduction of the copper oxide samples by DBD plasma, and the reduction mechanism was explored accordingly. Instead of high-energy electrons, atomic hydrogen (H) radicals, and the heating effect, excited-state hydrogen molecules are suspected to be one kind of important reducing agents. Atmospheric-pressure DBD cold plasma is proved to be an efficient method for preparing copper nanoparticles.

关 键 词:介质阻挡放电  铜纳米粒子  常压  放电等离子体  铜纳米颗粒  冷等离子体  机制  等离子体处理

Preparation of Copper Nanoparticles Using Dielectric Barrier Discharge at Atmospheric Pressure and its Mechanism
Abstract:copper, atmospheric-pressure cold plasma, dielectric barrier discharge (DBD),optical emission spectra (OES), excited-state hydrogen molecules
Keywords:copper  atmospheric-pressure cold plasma  dielectric barrier discharge(DBD)  optical emission spectra(OES)  excited-state hydrogen molecules
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