Imperfections in natural diamond: the key to understanding diamond genesis and the mantle

被引:10
作者
Day, Maxwell C. [1 ]
Pamato, Martha G. [1 ]
Novella, Davide [1 ]
Nestola, Fabrizio [1 ]
机构
[1] Univ Padua, Dept Geosci, Via Giovanni Gradenigo 6, I-35131 Padua, PD, Italy
来源
RIVISTA DEL NUOVO CIMENTO | 2023年 / 46卷 / 07期
关键词
Diamonds; Carbon; Mineral inclusions; Crystallographic defects; Nitrogen-vacancy defects; Carbon (re)cycling; Mantle geodynamics; RARE-EARTH-ELEMENTS; ALMANDINE-PYROPE PHASE; MINERAL INCLUSIONS; DEEP MANTLE; SULFIDE INCLUSIONS; SLAVE CRATON; TRANSITION ZONE; AQUEOUS FLUID; OCEANIC-CRUST; SUPERDEEP DIAMONDS;
D O I
10.1007/s40766-023-00045-6
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Diamond has unique physical, thermal, electrical, and optical properties with respect to other minerals and related synthetic compounds that make it extremely valuable from an economic and industrial perspective. Natural diamond that forms in the upper mantle, transition zone, and lower mantle may encapsulate mantle minerals during growth and protect them from physical breakdown and chemical alteration upon ascent of the diamond to the surface via kimberlite eruption. Such mineral inclusions serve as the only direct means to study the deep Earth and provide critical information about the pressure, temperature, and redox conditions and the chemical and isotopic composition of the mantle. Natural diamonds show a wide range of ages and thus allow one to reconstruct the history of large-scale Earth processes, such as the formation and amalgamation of Earth's lithosphere, the onset and evolution of tectonic processes (e.g., Wilson cycles), and the recycling of C, H, and N between different primordial and crustal reservoirs. In this review, a detailed description of all types of imperfections (e.g., mineral and fluid inclusions and structural defects) and the methods by which such imperfections can be analyzed to elucidate aspects of Earth's complex geologic history is given.
引用
收藏
页码:381 / 471
页数:91
相关论文
共 464 条
[111]   The VN3H defect in diamond: a quantum-mechanical characterization [J].
Gentile, Francesco Silvio ;
Salustro, Simone ;
Causa, Mauro ;
Erba, Alessandro ;
Carbonniere, Philippe ;
Dovesi, Roberto .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2017, 19 (33) :22221-22229
[112]   Geobarometric evidence for a LM/TZ origin of CaSiO3 in a sublithospheric diamond [J].
Genzel, P. -T. ;
Pamato, M. G. ;
Novella, D. ;
Santello, L. ;
Lorenzon, S. ;
Shirey, S. B. ;
Pearson, D. G. ;
Nestola, F. ;
Brenker, F. E. .
GEOCHEMICAL PERSPECTIVES LETTERS, 2023, 25 :41-45
[113]   Kimberlites: From Deep Earth to Diamond Mines [J].
Giuliani, Andrea ;
Pearson, D. Graham .
ELEMENTS, 2019, 15 (06) :377-380
[114]   Identification of the structure of the 3107 cm-1 H-related defect in diamond [J].
Goss, J. P. ;
Briddon, P. R. ;
Hill, V. ;
Jones, R. ;
Rayson, M. J. .
JOURNAL OF PHYSICS-CONDENSED MATTER, 2014, 26 (14)
[115]   Calculated strain response of vibrational modes for H-containing point defects in diamond [J].
Goss, Jonathan P. ;
Briddon, Patrick R. .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2011, 13 (24) :11488-11494
[116]   Extended defects in diamond:: The interstitial platelet -: art. no. 165208 [J].
Goss, JP ;
Coomer, BJ ;
Jones, R ;
Fall, CJ ;
Briddon, PR ;
Öberg, S .
PHYSICAL REVIEW B, 2003, 67 (16)
[117]   Theory of hydrogen in diamond -: art. no. 115207 [J].
Goss, JP ;
Jones, R ;
Heggie, MI ;
Ewels, CP ;
Briddon, PR ;
Öberg, S .
PHYSICAL REVIEW B, 2002, 65 (11) :1-13
[118]  
Graebner J.E., 1995, Diamond: Electronic Properties and Applications, P285, DOI [10.1007/978-1-4615-2257-7_7, DOI 10.1007/978-1-4615-2257-7_7]
[119]  
Green BL., 2022, REV MINERAL GEOCHEM, DOI [10.1515/9781501517044-012, DOI 10.1515/9781501517044-012]
[120]   TRACE-ELEMENTS IN INDICATOR MINERALS - AREA SELECTION AND TARGET EVALUATION IN DIAMOND EXPLORATION [J].
GRIFFIN, WL ;
RYAN, CG .
JOURNAL OF GEOCHEMICAL EXPLORATION, 1995, 53 (1-3) :311-337