Spectroscopic evidence of the origin of brown and pink diamonds family from Internatsionalnaya kimberlite pipe (Siberian craton)

被引:0
作者
Olga P. Yuryeva
Mariana I. Rakhmanova
Dmitry A. Zedgenizov
Viktoria V. Kalinina
机构
[1] Nikolaev Institute of Inorganic Chemistry SB RAS,
[2] V.S. Sobolev Institute of Geology and Mineralogy SB RAS,undefined
[3] Novosibirsk State University,undefined
来源
Physics and Chemistry of Minerals | 2020年 / 47卷
关键词
Diamond; Brown; Pink; Internatsionalnaya pipe; Defects; Luminescence; Deformation; Mantle;
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摘要
New spectroscopic data were obtained to distinguish the specific features of brown and pink diamonds from Internatsionalnaya kimberlite pipe (Siberian craton). It is shown that pink and brown samples differ markedly in the content and degree of aggregation of nitrogen defects. Pink diamonds generally have higher nitrogen content and a lower aggregation state compared to brown samples, which often show significant variations in nitrogen content and aggregation state between different growth zones. The 491 and 576 nm luminescent centres, which are signs of deformed brown diamonds, are absent or of low intensity in pink diamonds implying that high nitrogen content predominantly in A form in the pink diamonds had stiffened the diamonds against natural plastic deformation. The GR1 centre, formed by a neutrally charged vacancy, was observed only in pink diamonds, which may be due to their formation and storage in the mantle at lower-temperature conditions. Mineral inclusions indicate peridotitic and eclogitic paragenesis for studied brown and pink diamonds, respectively. It is suggested that brown diamonds have been formed in a primitive mantle at higher temperatures and/or stored there much longer.
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  • [1] Agrosì G(2017)Non-destructive in situ study of plastic deformations in diamonds: X-ray diffraction topography and µFTIR mapping of two super deep diamond crystals from São Luiz (Juina, Brazil) Crystals 7 233-160
  • [2] Tempesta G(2006)Combined TEM and STEM study of the brown colouration of natural diamonds J Phys Conf Ser 26 157-361
  • [3] Giancarlo V(1995)Infrared absorption by B nitrogen aggregate in diamond Phil Mag B 72 351-190
  • [4] Ventura G(2018)The unique nature of Argyle fancy diamonds: internal structure, paragenesis and reasons for color Soc Econ Geol Spec Publ 20 169-36
  • [5] Guidi M(2012)Optically reversible photochromism in natural pink diamond Diamond Relat Mater 30 31-397
  • [6] Hutchison M(1982)Cathodoluminescence from ‘giant’ platelets, and of the 2·526 eV vibronic system, in type Ia diamonds Phil Mag B 45 385-158
  • [7] Nimis P(1982)Optical studies of vibronic bands in yellow luminescing natural diamonds J Phys C Solid State Phys 15 147-1462
  • [8] Nestola F(1993)The optical and electronic properties of semiconducting diamond Phil Trans Roy Soc A 234 233-122
  • [9] Barnes R(1999)Things we still don’t know about optical centers in diamond Diamond Relat Mater 8 1455-359
  • [10] Bangert U(2000)Colour changes produced in natural brown diamonds by high pressure, high-temperature treatment Diamond Relat Mater 9 113-1983