Chinese Colorless HPHT Synthetic Diamond Inclusion Features and Identification
Abstract
:1. Introduction
2. Materials and methods
2.1. Materials
2.2. Methods
3. Results and Discussion
3.1. Inclusion Feature
3.2. Inclusion Raman Spectroscopy
3.3. PL Spectroscopy and Mapping
3.4. Chemical Composition of Inclusions
4. Conclusions
- (1)
- Finding characteristic inclusions and testing their Raman spectra to identify IIa diamonds is useful. Different manufacturers have different inclusions in their products due to their different techniques. The kite-like and lichenoid inclusion were not found in natural diamonds, and the abnormal electronic activity characteristics of the lichenoid (tree-like) inclusions in the range of the Raman shift wave-number of 100 to 750 cm−1 were clearly different from those of natural diamond inclusions. Furthermore, the HPHT samples did not have healed cracks around the inclusions. Stress differences were also observed around inclusions.
- (2)
- There were no IIa diamonds with characteristic inclusions or Raman spectra of inclusions. PL spectroscopy and mapping can provide evidence for identification. We observed peaks only in Guizhou natural type IIa diamonds at 406 nm, 612 nm, 676 nm, 710 nm, 741 nm, 745 nm and 945 nm. These peaks are missing in HPHT diamonds. The IIa diamond growth environments can be determined by performing particular peak position PL mapping, such as at 503, 505, 694 and 737 nm. These peaks were found in both natural and synthetic HPHT IIa diamonds. HPHT IIa colorless diamond PL mapping revealed the outlines of the growth sectors, whereas natural IIa colorless diamonds had a line and cloud-like growth morphology.
- (3)
- The chemical composition of the iron-carbide inclusion in samples where the inclusion was exposed helped to effectively distinguish HPHT from natural IIa colorless diamonds. The iron carbide inclusions of natural IIa diamonds are not dominated by Co and Mn elements. Trace elements in inclusions in HPHT IIa diamonds include B, Ti, Cu, Zn, Ga, Se, S, P and Zr, etc. We still need more natural samples for comparison of the trace elements in inclusions in natural IIa diamonds.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
References
- Luo, X.Y.; Xu, Y.J.; Liu, Y.B. The development and key technological improvement of synthetic diamond in China. Powder Metall. Ind. 2016, 26, 1–13. [Google Scholar]
- Song, Z.H.; Lu, T.J.; Ke, J.; Su, J.; Tang, S.; Gao, B.; Hu, N.; Zhang, J.; Wang, D.F. Identification characteristic of large near-colourless HPHT synthetic diamond from China. J. Gems Gemmol. 2016, 18, 1–8. [Google Scholar]
- Lu, T.; Ke, J.; Lan, Y.; Song, Z.; Zhang, J.; Tang, S.; Su, J.; Dai, H.; Wu, X. Current Status of Chinese Synthetic Diamonds. J. Gemmol. 2019, 36, 748–757. [Google Scholar] [CrossRef]
- Choi, H.; Kim, Y.; Seok, J. Recent trends of gem-quality colorless synthetic diamonds. J. Korean Cryst. Growth Cryst. Technol. 2017, 27, 149–153. [Google Scholar]
- He, X.; Du, M.; Zhang, Y.; Chu, P.K.; Guo, Q. Gemologic and Spectroscopy Properties of Chinese High-Pressure High-Temperature Synthetic Diamond. JOM 2019, 71, 2531–2540. [Google Scholar] [CrossRef]
- Welbourn, C.M.; Cooper, M.; Spear, P.M. De Beers Natural versus Synthetic Diamond Verification Instruments. Gems Gemol. 1996, 32, 156–169. [Google Scholar] [CrossRef]
- Breeding, C.M.; Shen, A.H.; Eaton-Magaña, S.; Rossman, G.R.; Shigley, J.E.; Gilbertson, A. Developments in Gemstone Analysis Techniques and Instrumentation During the 2000s. Gems Gemol. 2010, 46, 241–257. [Google Scholar] [CrossRef]
- Meng, Y.F.; Peng, M.S.; Wang, J.Y.; Huang, W.X.; Yuan, Q.X.; Zhu, P.P. Monochromatic X-ray topography of diamonds with syn-chrotron radiation. Acta Mineral. Sin. 2005, 25, 353–356. [Google Scholar]
- Shiryaev, A.A.; Zolotov, D.A.; Suprun, O.M.; Ivakhnenko, S.A.; Averin, A.A.; Buzmakov, A.V.; Lysakovskyi, V.V.; Dyachkova, I.G.; Asadchikov, V.E. Unusual types of extended defects in synthetic high pressure—High temperature diamonds. Cryst. Eng. Comm. 2018, 20, 7700–7705. [Google Scholar] [CrossRef]
- Muyal, J. Lab Notes: Cleavage System in Pink Diamond. Gems Gemol. 2015, 51, 324–325. [Google Scholar]
- Frezzotti, M.L.; Tecce, F.; Casagli, A. Raman spectroscopy for fluid inclusion analysis. J. Geochem. Explor. 2012, 112, 1–20. [Google Scholar] [CrossRef]
- Smith, E.M.; Wang, W. Fluid CH4 and H2 trapped around metallic inclusions in HPHT synthetic diamond. Diam. Relat. Mater. 2016, 68, 10–12. [Google Scholar] [CrossRef]
- Smith, E.M.; Shirey, S.B.; Wang, W. The Very Deep Origin of the World’s Biggest Diamonds. Gems Gemol. 2017, 53, 388–403. [Google Scholar] [CrossRef]
- Smith, E.M.; Shirey, S.B.; Nestola, F.; Bullock, E.S.; Wang, J.; Richardson, S.H.; Wang, W. Large gem diamonds from metallic liquid in Earth’s deep mantle. Science 2016, 354, 1403–1405. [Google Scholar] [CrossRef] [PubMed]
- Kaminsky, F.V.; Wirth, R. Iron Carbide Inclusions In Lower-Mantle Diamond From Juina, Brazil. Can. Mineral. 2011, 49, 555–572. [Google Scholar] [CrossRef] [Green Version]
- Zaitsev, A.M. Optical Properties of Diamond: A Data Handbook; Springer: Berlin/Heidelberg, Germany; New York, NY, USA, 2001; pp. 48–275. [Google Scholar]
- D’Haenens-Johansson, U.F.; Moe, K.S.; Johnson, P.; Wong, S.Y.; Lu, R.; Wang, W. Near-Colorless HPHT Synthetic Diamonds from AOTC Group. Gems Gemol. 2014, 50, 30–45. [Google Scholar] [CrossRef]
- Tang, S.; Lu, T.J.; Song, Z.H.; Ke, J.; Zhang, J.; Zhang, J.; Liu, Q.K. Gemological properties and identification of ZhongNan Gem-quality HPHT diamonds. China Gems 2017, 1, 212–215. [Google Scholar]
- Liang, R.; Lan, Y.; Zhang, T.Y.; Lu, T.J.; Chen, M.Y.; Wang, X.Q.; Zhang, X.H. Multi-spectroscopy studies on large grained HPHT synthetic diamonds from Shandong, China. Spectrosc. Spectr. Anal. 2019, 39, 1840–1845. [Google Scholar]
- Breeding, C.M.; Wang, W. Occurrence of the Si-V defect center in natural colorless gem diamonds. Diam. Relat. Mater. 2008, 17, 1335–1344. [Google Scholar] [CrossRef]
- Ma, Y.; Li, H.H.; Zhu, X.X.; Ding, T.; Lu, T.J.; Qiu, Z.L. Lab Notes: D color natural IIa diamond with the walstromite inclusion. Gems Gemol. 2018, 4, 241–243. [Google Scholar]
- Breeding, C.M.; Shigley, J.E. The “Type” Classification System of Diamonds and Its Importance in Gemology. Gems Gemol. 2009, 45, 96–111. [Google Scholar] [CrossRef]
- Guo, M.-M.; Li, S.-S.; Feng, L.; Hu, M.-H.; Su, T.-C.; Gao, G.-J.; Wang, J.-Z.; You, Y.; Nie, Y. The effect of adding Cu on the nitrogen removal efficiency of Ti for the synthesis of a large type IIa diamond under high temperature and high pressure. New Carbon Mater. 2020, 35, 559–566. [Google Scholar] [CrossRef]
- Litasov, K.D.; Kagi, H.; Bekker, T.B.; Hirata, T.; Makino, Y. Cuboctahedral type Ib diamonds in ophiolitic chromitites and perido-tites: The evidence for anthropogenic contamination. High Press. Res. 2019, 39, 480–488. [Google Scholar] [CrossRef]
Sample NO. | Color/Type | Weight/ct | Shape | Inclusion Properties | Inclusion Assemblage | Emission Peaks | Origin |
---|---|---|---|---|---|---|---|
HH-1 | Colorless/IIa | 0.23 | Hextubbiness | Tiny point-like inclusions, less than 1 μm | - | - | HuangHe |
HH-5 | Colorless/IIa | 0.35 | Hexoctahedron | Block-shaped, rod-like, greater than 150 μm | Carbide, magnetite, hematite, sulfide, graphite, methane | 416, 509, 533, 538, 693, 694, 883, 884 nm | HuangHe |
HH-6 | Colorless/IIa | 0.20 | Hexoctahedron | Water-drop, tiny point-like inclusions, less than 1 μm | Carbide, graphite | 693, 694, 883, 884 nm | HuangHe |
HH-20 | Colorless/IIa | 0.38 | Hexoctahedron | Tiny point-like inclusion distributed along the edge of a crystal, less than 1 μm | - | 883, 884 nm | HuangHe |
J-2 | Colorless/IIa | 0.07 | Hexoctahedron | Kite-like, tubular (cone like) inclusions (1~10 μm) | - | 505, 737, 883 nm | HuaJing |
J-3 | Colorless/IIa | 0.06 | Hexoctahedron | Disc shape, point-like inclusions (1~90 μm) | Carbide, graphite | 505, 737, 877 nm | HuaJing |
J-20 | Colorless/IIa | 0.05 | Hexoctahedron | Point-like inclusions (1~50 μm) | - | 575, 637, 737 nm | HuaJing |
J-10 | Colorless/IIa | 0.15 | Hexoctahedron | Tiny point-like inclusions, less than 1 μm, Tubular (cone like) inclusions | - | 737 nm | HuaJing |
Z-2 | Colorless/IIa | 1.02 | Hexoctahedron | Rod like inclusions (1~5 μm) | Carbide, graphite, methane | 484, 489, 491, 883, 884 nm | ZhongNan |
Z-3 | Colorless/IIa | 1.00 | Hexoctahedron | Lichenoid (tree-like) inclusions, point-like inclusions (1~80 μm) | Metal alloy, methane | 484, 489, 507, 883, 884 nm | ZhongNan |
Z-4 | Colorless/IIa | 0.50 | Hexoctahedron | Water-drop, point-like inclusions (1~50 μm) | Metal alloy, carbide, graphite | 693, 694, 883, 884 nm | ZhongNan |
GZ-18 | Colorless/IIa | 0.12 | Irregular | Irregular inclusions | Graphite | 491, 496, 503, 505, 536, 575, 579, 637, 612, 676, 710, 741 nm | GuiZhou |
GZ-25 | Colorless/IIa | 0.17 | Irregular | - | 406, 415, 491, 496, 741 nm | GuiZhou | |
GZ-42 | Colorless/IIa | 0.10 | Irregular | - | 406, 415, 491, 496, 741, 945 nm | GuiZhou |
No. of Diamonds | Color/ Style | Largest in Group | Inclusion Assemblage | Inclusion Properties | Origin | Delivery Time/Reference |
---|---|---|---|---|---|---|
11 | Colorless /IIa | 1.02ct | Undetected, metal alloy, carbide, and containing complicated emission peaks. | Tiny point-like inclusions, silver/black color transparent to opaque, less than 1 μm. Rod-like, pear, water-drop inclusions along with four angles at the end of <111> chains, 4 also had graphite + CH4 jacket (did not have detectable H2 in Raman). Lichenoid (tree-like) inclusion tubular (cone like), kite-like inclusion along face {100} margin. | HH,J,Z | 2018–2020 |
3 | Colorless /IIa | 0.17ct | Undetected. | Graphite. | Guizhou of China | 2020 |
60 | Colorless /IIa | 30.13ct | Crystal minerals, metallic Fe-Ni-C-S (inferred to be primary melt inclusions). | Perovskite, walstromite, majoritic garnet, titanite, larnite, magnetic, silver/black color, opaque, grouped in <111> chains, CH4 fluid jacket (22 also had detectable H2 in Raman); associated with healed cracks; altered to red-brown (hematite). | South Africa | Smith et al., 2016, 2017 |
1 | Colorless /IaB | Almost 0.80ct | Metal alloy, metallic compound. | - | Brazil | Kaminsky et al., 2011 |
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Ma, Y.; Qiu, Z.; Deng, X.; Ding, T.; Li, H.; Lu, T.; Song, Z.; Zhu, W.; Wu, J. Chinese Colorless HPHT Synthetic Diamond Inclusion Features and Identification. Crystals 2022, 12, 1266. https://doi.org/10.3390/cryst12091266
Ma Y, Qiu Z, Deng X, Ding T, Li H, Lu T, Song Z, Zhu W, Wu J. Chinese Colorless HPHT Synthetic Diamond Inclusion Features and Identification. Crystals. 2022; 12(9):1266. https://doi.org/10.3390/cryst12091266
Chicago/Turabian StyleMa, Ying, Zhili Qiu, Xiaoqin Deng, Ting Ding, Huihuang Li, Taijin Lu, Zhonghua Song, Wenfang Zhu, and Jinlin Wu. 2022. "Chinese Colorless HPHT Synthetic Diamond Inclusion Features and Identification" Crystals 12, no. 9: 1266. https://doi.org/10.3390/cryst12091266
APA StyleMa, Y., Qiu, Z., Deng, X., Ding, T., Li, H., Lu, T., Song, Z., Zhu, W., & Wu, J. (2022). Chinese Colorless HPHT Synthetic Diamond Inclusion Features and Identification. Crystals, 12(9), 1266. https://doi.org/10.3390/cryst12091266