Nanoparticle production using atmospheric pressure cold plasma

被引:42
|
作者
Vons, V.
Creyghton, Y.
Schmidt-Ott, A.
机构
[1] Delft Univ Technol, NL-2628 BL Delft, Netherlands
[2] TNO Def, Secur & Safety, NL-2280 AA Rijswijk, Netherlands
关键词
nanoparticles; nanoparticle coating; generation; dielectric barrier discharge; atmospheric plasma; FERROCENE; DECOMPOSITION; VOLUME;
D O I
10.1007/s11051-006-9133-2
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
A new technique is proposed for the production and coating of nanoparticles, based on the dissociation of a volatile precursor in an atmospheric pressure, non-equilibrium (cold) plasma. The plasma is produced by a dielectric barrier discharge. Using this technique, nanoparticles were successfully produced from acetylene, ferrocene and hexamethyldisiloxane, using argon and helium as carrier gasses. Carbon nanoparticles were formed from acetylene when argon was used as a carrier gas, while in helium no particles were observed. The difference between the gasses is most likely due to the plasma structure. The argon plasma is filamentary, whereas in helium a homogeneous glow is observed. Using ferrocene, iron particles were produced, which rapidly oxidized to form iron oxide when exposed to ambient air. Preliminary experiments on particle coating suggest that coating by a silicon-based compound is possible.
引用
收藏
页码:721 / 728
页数:8
相关论文
共 50 条
  • [21] Plasma Medicine: Applications of Cold Atmospheric Pressure Plasma in Dermatology
    Bernhardt, Thoralf
    Semmler, Marie Luise
    Schaefer, Mirijam
    Bekeschus, Sander
    Emmert, Steffen
    Boeckmann, Lars
    OXIDATIVE MEDICINE AND CELLULAR LONGEVITY, 2019, 2019
  • [22] Treating Surfaces with a Cold Atmospheric Pressure Plasma using the COST-Jet
    Golda, Judith
    Sgonina, Kerstin
    Held, Julian
    Benedikt, Jan
    Schulz-von der Gathen, Volker
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2020, (165): : 1 - 16
  • [23] Fabrication of Al doped ZnO films using atmospheric pressure cold plasma
    Suzaki, Yoshifumi
    Miyagawa, Hayato
    Yamaguchi, Kenzo
    Kim, Yoon-Kee
    THIN SOLID FILMS, 2012, 522 : 324 - 329
  • [24] Etching Si wafer using atmospheric pressure RF cold plasma jet
    Zhao, Lingli
    Duan, Xiaojin
    Yin, Minghui
    Xu, Xiangyu
    Wang, Shouguo
    Pan Tao Ti Hsueh Pao/Chinese Journal of Semiconductors, 2007, 28 (10): : 1615 - 1619
  • [25] Decontamination of Red Pepper Using Cold Atmospheric Pressure Plasma as Alternative Technique
    Abdi, Soheila
    Hosseini, Ashrafalsadat
    Moslehishad, Maryam
    Dorranian, Davoud
    APPLIED FOOD BIOTECHNOLOGY, 2019, 6 (04) : 247 - 254
  • [26] Synergies between polyacrylamide polymerization and nanoparticle generation using an atmospheric pressure plasma jet
    Gangal, Urvashi
    Exarhos, Stephen
    Contreras, Tristan
    Rich, Christopher C.
    Dolan, Kay
    Yang, Vincent
    Frontiera, Renee R.
    Bruggeman, Peter
    PLASMA PROCESSES AND POLYMERS, 2022, 19 (11)
  • [27] Cold atmospheric pressure plasma for chronic wound healing
    Masur, K.
    von Werder, Y.
    Hasse, S.
    Bekeschus, S.
    Weltmann, K.
    Motz, W.
    von Woedtke, T.
    EXPERIMENTAL DERMATOLOGY, 2017, 26 (03) : E28 - E29
  • [28] ATMOSPHERIC PRESSURE COLD PLASMA APPLICATION FOR FOOD SAFETY
    Rajan, Magesh T.
    Turner, Jeffery
    Pinnell, Lee
    Tallman, James
    Moreno, Emille
    2017 IEEE INTERNATIONAL CONFERENCE ON PLASMA SCIENCE (ICOPS), 2017,
  • [29] Antifungal effects of cold atmospheric pressure plasma in vitro
    Wiegand, C.
    Horn, K.
    Pfuch, A.
    Beier, O.
    Schimanski, A.
    Hipler, U.
    EXPERIMENTAL DERMATOLOGY, 2012, 21 (03) : e48 - e48
  • [30] Development of a combinatorial atmospheric pressure cold plasma processor
    Terajima, T
    Koinuma, H
    APPLIED SURFACE SCIENCE, 2004, 223 (1-3) : 259 - 263