Spectroscopic and microscopic characterizations of color lamellae in natural pink diamonds

被引:74
|
作者
Gaillou, E. [1 ,2 ]
Post, J. E. [1 ]
Bassim, N. D. [2 ]
Zaitsev, A. M. [3 ]
Rose, T. [1 ]
Fries, M. D. [4 ]
Stroud, R. M. [2 ]
Steele, A. [5 ]
Butler, J. E. [2 ]
机构
[1] Smithsonian Inst, Dept Mineral Sci, Washington, DC 20560 USA
[2] USN, Res Lab, Washington, DC 20375 USA
[3] CUNY Coll Staten Isl, Staten Isl, NY 10314 USA
[4] CALTECH, Jet Prop Lab, Pasadena, CA 91109 USA
[5] Carnegie Inst Sci, Geophys Lab, Washington, DC 20015 USA
关键词
Natural pink diamond; Graining; Deformation twin; Plastic deformation; 405.5 nm center; PLASTIC-DEFORMATION; OPTICAL-CENTERS; PHOTOLUMINESCENCE; PRESSURE; STRESS; PHONON; CARBON;
D O I
10.1016/j.diamond.2010.06.015
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Nineteen natural, untreated, type laAB pink diamonds from various localities were studied. They display microscopic (similar to 1 mu m thick) pink lamellae along {111} in an otherwise colorless diamond. This coloration concentrated in lamellae is commonly referred to as "graining". The diamonds were examined using high spatial resolution spectroscopic methods and transmission electron microscopy. TEM revealed that a pink lamella consists of a cluster of paired microtwins created under stress by plastic deformation. Raman line shift and broadening associated with the twinned pink lamellae indicate the presence of residual stress. Ultraviolet-visible absorption spectra from each of the samples showed a broad absorption band centered at similar to 550 nm, the source of the pink color. Cathodoluminescence spectra of the pink lamellae are different from those of the bulk, colorless diamond matrix. Within the lamellae only, the H3 center is observed along with a less intense N3 center. In some samples, instead of the N3 center a new center with a zero phonon line at 405.5 nm is observed. This previously unreported 405.5 nm center has phonon sidebands qualitatively identical to the N3 center, and may be an N3 center modified by a specific environment. These results suggest that lattice vacancies were created during twinning resulting from plastic deformation, and that impurity centers (such as those containing nitrogen) trap some of the diffusing vacancies. Since the pink lamellae are still under residual stress, new or modified defect centers are created, e.g. H3 and N3. The color center(s) responsible for the pink color (550 nm absorption) was not identified, but likely is only present in diamonds that experienced plastic deformation. Reported annealing of plastically deformed brown diamonds, which results in a residual pink color, suggests that the pink color is stable under these high pressure, high temperature conditions. The reported observations that annealing plastically deformed brown diamonds results in a residual pink color and that the pink color does not anneal out under similar high pressure, high temperature conditions, suggests that the deformation inducing pink color occurs inside the Earth's mantle, whereas brown coloration might be induced during a more recent event such as the ascent of the diamond to the surface in a kimberlitic/lamproitic eruption. Published by Elsevier BM.
引用
收藏
页码:1207 / 1220
页数:14
相关论文
共 50 条
  • [21] Preliminary Study on the Unique Spectroscopic Characteristics of Natural and Synthetic Diamonds
    Yan Jun
    Wang Xiao-xiang
    Tao Jin-bo
    Zhang Jian
    Hu Xian-chao
    SPECTROSCOPY AND SPECTRAL ANALYSIS, 2015, 35 (10) : 2723 - 2729
  • [22] Spectroscopic features of natural and HPHT-treated yellow diamonds
    Lai, Mei Yan
    Breeding, Christopher M.
    Stachel, Thomas
    Stern, Richard A.
    DIAMOND AND RELATED MATERIALS, 2020, 101
  • [23] Spectroscopic gemstone screener rapidly identifies natural and synthetic diamonds
    Wallace, John
    LASER FOCUS WORLD, 2021, 57 (07): : 13 - 14
  • [24] The effect of some color centers on the coloration of natural and synthetic diamonds
    Yu. A. Klyuev
    A. M. Naletov
    Journal of Superhard Materials, 2008, 30 : 261 - 265
  • [25] A model of HPHT color enhancement mechanism in natural gray diamonds
    Vins, VG
    Kononov, OV
    DIAMOND AND RELATED MATERIALS, 2003, 12 (3-7) : 542 - 545
  • [26] The effect of some color centers on the coloration of natural and synthetic diamonds
    Klyuev, Yu. A.
    Naletov, A. M.
    JOURNAL OF SUPERHARD MATERIALS, 2008, 30 (04) : 261 - 265
  • [27] An investigation into the cause of color in natural black diamonds from Siberia
    Titkov, SV
    Zudin, NG
    Gorshkov, AI
    Sivtsov, AV
    Magazina, LO
    GEMS & GEMOLOGY, 2003, 39 (03): : 200 - 209
  • [28] Color cathodoluminescence of natural diamonds with curveline zonning and rounded cores
    Smirnova, EP
    Zezin, RB
    Saparin, GV
    Obyden, SK
    DOKLADY AKADEMII NAUK, 1999, 366 (01) : 100 - 103
  • [29] Spectroscopic Characteristics and Identification Methods of Color-Treated Purplish Red Diamonds
    Ye Shuang
    Chen Mei-hua
    Wu Gai
    He Shuang
    SPECTROSCOPY AND SPECTRAL ANALYSIS, 2022, 42 (01) : 191 - 196
  • [30] Spectroscopic Characteristics and Identification Methods of Color-Treated Purplish Red Diamonds
    Ye, Shuang
    Chen, Mei-Hua
    Wu, Gai
    He, Shuang
    Guang Pu Xue Yu Guang Pu Fen Xi/Spectroscopy and Spectral Analysis, 2022, 42 (01): : 191 - 196