Zinc crystal growth in microgravity

被引:15
|
作者
Michael, BP [1 ]
Nuth, JA
Lilleleht, LU
机构
[1] Catholic Univ Amer, Dept Chem, Washington, DC 20064 USA
[2] NASA, Goddard Space Flight Ctr, Astrochem Branch, Greenbelt, MD 20771 USA
[3] Univ Virginia, Dept Chem Engn, Charlottesville, VA 22904 USA
来源
ASTROPHYSICAL JOURNAL | 2003年 / 590卷 / 01期
关键词
astrochemistry; dust; extinction; meteors; meteoroids; methods : laboratory;
D O I
10.1086/374918
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We report one of the first direct measurements of the efficiency of vapor - to - crystalline-solid growth in a microgravity environment aboard NASA's Reduced Gravity Research Facility. Zinc vapor is produced from a heater in a vacuum chamber containing argon gas. Vapor-phase nucleation is induced by cooling as the vapor expands away from the heat source, and its onset is easily detected visually by the appearance of a cloud of solid, crystalline zinc particles. The size distribution of these particles is monitored in situ by photon correlation spectroscopy. Samples were also extracted from the vapor for later analysis by scanning electron microscopy. The initial, rapid increase in the particle size distribution as a function of time is used to calculate the sticking efficiency for zinc atoms at growing crystal sites. Only a few of every 105 zinc atoms that collide with the grain surfaces are incorporated into the growing crystals. If the large (> 10 mum) graphite or SiC grains extracted from meteorites grow with comparable efficiency, then such materials could not have formed on timescales compatible with circumstellar outflows. However, these grains could have formed in equilibrium in stellar atmospheres prior to the initiation of the outflow.
引用
收藏
页码:579 / 585
页数:7
相关论文
共 50 条
  • [41] Study of SiGe Crystal Growth Interface Processed in Microgravity
    Arai, Yasutomo
    Kinoshita, Kyoichi
    Tsukada, Takao
    Kubo, Masaki
    Abe, Keita
    Sumioka, Sara
    Baba, Satoshi
    Inatomi, Yuko
    CRYSTAL GROWTH & DESIGN, 2018, 18 (06) : 3697 - 3703
  • [42] PROTEIN SINGLE-CRYSTAL GROWTH UNDER MICROGRAVITY
    LITTKE, W
    JOHN, C
    SCIENCE, 1984, 225 (4658) : 203 - 204
  • [43] A review of radial segregation in crystal growth during microgravity
    Carlberg, Torbjorn
    PROGRESS IN CRYSTAL GROWTH AND CHARACTERIZATION OF MATERIALS, 2006, 52 (03) : 213 - 222
  • [44] CRYSTAL-GROWTH METHOD UNDER MICROGRAVITY CONDITIONS
    RODOT, H
    HAMIDI, M
    BOURNEIX, J
    OKHOTIN, AS
    ZOUBRIDSKI, IA
    KRIAPOV, VT
    MARKOV, EV
    JOURNAL OF CRYSTAL GROWTH, 1981, 52 (APR) : 478 - 484
  • [45] Preliminary study of crystal growth of compound semiconductors in microgravity
    Kato, HT
    Kinoshita, K
    Yoda, S
    SPACE COOPERATION INTO THE 21ST CENTURY, 1997, 96 : 523 - 529
  • [46] Investigating the effect of impurities on macromolecule crystal growth in microgravity
    Snell, EH
    Judge, RA
    Crawford, L
    Forsythe, EL
    Pusey, ML
    Sportiello, M
    Todd, P
    Bellamy, H
    Lovelace, J
    Cassanto, JM
    Borgstahl, GEO
    CRYSTAL GROWTH & DESIGN, 2001, 1 (02) : 151 - 158
  • [47] PROTEIN SINGLE-CRYSTAL GROWTH UNDER MICROGRAVITY
    LITTKE, W
    JOHN, C
    EARTH-ORIENTED APPLICATIONS OF SPACE TECHNOLOGY, 1985, 5 (1-2): : 63 - 66
  • [48] Numerical simulation of Bridgman crystal growth of PbSnTe in microgravity
    Yao, M., 1600, Carl Hanser Verlag, Munchen, Germany (08):
  • [49] CRYSTAL GROWTH OF GaSb UNDER MICROGRAVITY CONDITIONS.
    Gyuro, I.
    Lendvay, E.
    Gorog, T.
    Harsy, M.
    Pozsgai, I.
    Somogyi, K.
    Koltai, R.
    Lohner, T.
    Gyulai, J.
    Ranky, M.
    Varga, L.
    Giber, J.
    Bori, L.
    Regel, L.L.
    Kulchitskiy, N.A.
    1600, (11): : 7 - 8
  • [50] Influence of seed crystal dimension on crystal growth from solution under microgravity
    Zhu, ZH
    Ge, PW
    Xu, ZY
    CHINESE PHYSICS, 2000, 9 (05): : 321 - 324