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NARROW
GeoRef Subject
-
all geography including DSDP/ODP Sites and Legs
-
Africa
-
Southern Africa
-
Kaapvaal Craton (1)
-
South Africa
-
Bushveld Complex (4)
-
Free State South Africa
-
Vredefort Dome (10)
-
-
Gauteng South Africa
-
Johannesburg South Africa (2)
-
-
Merensky Reef (1)
-
Transvaal region (3)
-
-
-
-
Arctic region
-
Greenland
-
East Greenland (2)
-
Skaergaard Intrusion (1)
-
South Greenland (1)
-
-
-
Asia
-
Arabian Peninsula
-
Yemen (1)
-
-
Buryat Russian Federation (1)
-
Far East
-
China
-
Yangtze Platform (1)
-
-
Japan
-
Honshu (1)
-
Kyushu (1)
-
Shikoku (1)
-
-
Vietnam (1)
-
-
Indian Peninsula
-
India
-
Gujarat India
-
Saurashtra (1)
-
-
-
-
Sayan
-
Eastern Sayan (1)
-
-
-
Australasia
-
Australia
-
Western Australia
-
Eastern Goldfields (1)
-
Pilbara Craton (1)
-
Yilgarn Craton (1)
-
-
-
-
Canada
-
Eastern Canada
-
Newfoundland and Labrador
-
Newfoundland (1)
-
-
Ontario
-
Sudbury Basin (2)
-
Sudbury igneous complex (11)
-
Sudbury Structure (5)
-
-
Quebec
-
Abitibi County Quebec
-
Chibougamau Quebec (1)
-
-
-
-
Labrador Trough (1)
-
Ungava (1)
-
-
Central America
-
Costa Rica
-
Nicoya Peninsula (1)
-
-
-
Commonwealth of Independent States
-
Russian Federation
-
Buryat Russian Federation (1)
-
Murmansk Russian Federation
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Kola Peninsula (1)
-
-
-
-
Crater Lake (1)
-
Europe
-
Murmansk Russian Federation
-
Kola Peninsula (1)
-
-
Southern Europe
-
Italy
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Lombardy Italy
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Varese Italy (2)
-
-
Sardinia Italy (1)
-
-
-
Western Europe
-
Ireland (1)
-
United Kingdom
-
Great Britain
-
England
-
Gloucestershire England (1)
-
Welsh Borderland (1)
-
-
Scotland
-
Argyllshire Scotland (1)
-
Hebrides
-
Inner Hebrides
-
Isle of Skye (1)
-
-
-
Highland region Scotland
-
Ardnamurchan (1)
-
Inverness-shire Scotland
-
Isle of Skye (1)
-
-
-
Scottish Highlands
-
Grampian Highlands (1)
-
-
-
Wales (2)
-
-
Northern Ireland (2)
-
-
-
-
Hare Bay (1)
-
Jack Hills (1)
-
Lake District (3)
-
North America
-
Canadian Shield
-
Grenville Province (1)
-
Superior Province
-
Abitibi Belt (1)
-
-
-
Great Lakes
-
Lake Huron (1)
-
-
Great Lakes region (2)
-
Keweenawan Rift (3)
-
Lake Superior region (2)
-
Rocky Mountains
-
U. S. Rocky Mountains (1)
-
-
-
Palisades Sill (2)
-
United States
-
Alaska (1)
-
Arizona
-
Cochise County Arizona (1)
-
Gila County Arizona
-
Sierra Ancha (1)
-
-
-
California
-
Central California (1)
-
Mariposa County California (1)
-
Salton Trough (1)
-
Sierra Nevada Batholith (1)
-
Southern California (1)
-
-
Colorado
-
Mineral County Colorado (1)
-
San Juan volcanic field (1)
-
-
Connecticut (1)
-
Idaho (1)
-
Michigan
-
Michigan Upper Peninsula
-
Ontonagon County Michigan (1)
-
-
-
Minnesota
-
Cook County Minnesota (1)
-
Dakota County Minnesota (1)
-
Duluth Complex (2)
-
Lake County Minnesota (1)
-
Saint Louis County Minnesota (1)
-
-
Montana
-
Sanders County Montana (1)
-
Sweet Grass County Montana (1)
-
-
New England (1)
-
New Jersey
-
Hudson County New Jersey (1)
-
-
Newark Basin (1)
-
Oklahoma
-
Kiowa County Oklahoma (1)
-
Wichita Mountains (1)
-
-
Oregon
-
Klamath County Oregon
-
Mount Mazama (1)
-
-
Lake County Oregon (1)
-
-
Pennsylvania
-
York County Pennsylvania (1)
-
-
Southern Oklahoma Aulacogen (1)
-
U. S. Rocky Mountains (1)
-
Utah
-
Millard County Utah
-
House Range (1)
-
-
-
Wisconsin
-
Ashland County Wisconsin (1)
-
Iron County Wisconsin (1)
-
Sawyer County Wisconsin (1)
-
-
-
-
commodities
-
aggregate (1)
-
construction materials
-
crushed stone (1)
-
-
metal ores
-
arsenic ores (1)
-
cobalt ores (1)
-
copper ores (13)
-
gold ores (4)
-
iron ores (2)
-
lead ores (1)
-
molybdenum ores (2)
-
nickel ores (9)
-
palladium ores (1)
-
platinum ores (6)
-
polymetallic ores (1)
-
silver ores (3)
-
tin ores (1)
-
uranium ores (1)
-
zinc ores (4)
-
-
mineral deposits, genesis (8)
-
mineral exploration (5)
-
-
elements, isotopes
-
carbon
-
C-14 (1)
-
-
chemical ratios (1)
-
halogens
-
fluorine (1)
-
-
hydrogen
-
D/H (1)
-
deuterium (1)
-
-
isotope ratios (11)
-
isotopes
-
radioactive isotopes
-
C-14 (1)
-
Os-187/Os-186 (1)
-
Rb-87/Sr-86 (1)
-
Sm-147/Nd-144 (2)
-
U-238/Pb-206 (1)
-
-
stable isotopes
-
D/H (1)
-
deuterium (1)
-
Nd-144/Nd-143 (3)
-
O-18/O-16 (4)
-
Os-187/Os-186 (1)
-
Os-188/Os-187 (1)
-
Rb-87/Sr-86 (1)
-
S-34/S-32 (1)
-
Sm-147/Nd-144 (2)
-
Sr-87/Sr-86 (11)
-
U-238/Pb-206 (1)
-
-
-
metals
-
actinides
-
uranium
-
U-238/Pb-206 (1)
-
-
-
alkali metals
-
lithium (1)
-
potassium (2)
-
rubidium
-
Rb-87/Sr-86 (1)
-
-
-
alkaline earth metals
-
strontium
-
Rb-87/Sr-86 (1)
-
Sr-87/Sr-86 (11)
-
-
-
iron (2)
-
lead
-
U-238/Pb-206 (1)
-
-
platinum group
-
osmium
-
Os-187/Os-186 (1)
-
Os-188/Os-187 (1)
-
-
palladium ores (1)
-
platinum ores (6)
-
-
precious metals (3)
-
rare earths
-
cerium (1)
-
neodymium
-
Nd-144/Nd-143 (3)
-
Sm-147/Nd-144 (2)
-
-
samarium
-
Sm-147/Nd-144 (2)
-
-
scandium (1)
-
yttrium (1)
-
-
tin (1)
-
titanium (3)
-
tungsten (1)
-
-
oxygen
-
O-18/O-16 (4)
-
-
phosphorus (1)
-
selenium (1)
-
sulfur
-
S-34/S-32 (1)
-
-
-
geochronology methods
-
(U-Th)/He (1)
-
Ar/Ar (1)
-
optical mineralogy (1)
-
paleomagnetism (1)
-
Pb/Pb (3)
-
Rb/Sr (7)
-
Re/Os (2)
-
Sm/Nd (3)
-
Th/U (1)
-
U/Pb (8)
-
U/Th/Pb (1)
-
-
geologic age
-
Cenozoic
-
lower Cenozoic (1)
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Quaternary
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Holocene
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upper Holocene (1)
-
-
-
Tertiary
-
lower Tertiary (1)
-
Neogene
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Miocene (1)
-
-
Paleogene
-
Oligocene
-
Fish Canyon Tuff (1)
-
-
-
-
-
Mesozoic
-
Cretaceous
-
Lower Cretaceous (1)
-
Upper Cretaceous (1)
-
-
Jurassic
-
Lower Jurassic (2)
-
-
Newark Supergroup (1)
-
Nicoya Complex (1)
-
Triassic
-
Upper Triassic (1)
-
-
-
Paleozoic
-
Cambrian
-
Lower Cambrian (1)
-
-
Carboniferous (1)
-
Devonian
-
Lower Devonian
-
Shap Granite (1)
-
-
-
Ordovician (2)
-
Permian
-
Upper Permian (1)
-
-
Silurian (1)
-
-
Precambrian
-
Archean
-
Gilman Formation (1)
-
Neoarchean (1)
-
-
Hadean (3)
-
Levack Gneiss (2)
-
North Shore Volcanics (1)
-
Prichard Formation (1)
-
Purcell System (1)
-
Stillwater Complex (1)
-
Transvaal Supergroup (3)
-
upper Precambrian
-
Proterozoic
-
Huronian
-
Onaping Formation (3)
-
-
Keweenawan (1)
-
Mesoproterozoic
-
Belt Supergroup (1)
-
-
Neoproterozoic (2)
-
Paleoproterozoic
-
Aphebian (1)
-
Chelmsford Formation (1)
-
Rooiberg Group (2)
-
Whitewater Group (1)
-
-
-
-
-
-
igneous rocks
-
extrusive rocks (1)
-
igneous rocks
-
granophyre (86)
-
picrite (1)
-
plutonic rocks
-
anorthosite (2)
-
diabase
-
quartz diabase (1)
-
tholeiitic dolerite (1)
-
-
diorites
-
quartz diorites (1)
-
tonalite (1)
-
trondhjemite (1)
-
-
gabbros
-
labradoritite (1)
-
norite (13)
-
-
granites
-
adamellite (1)
-
alkali granites (1)
-
aplite (3)
-
A-type granites (2)
-
charnockite (1)
-
felsite (2)
-
granite porphyry (2)
-
graphic granite (2)
-
microgranite (3)
-
micropegmatite (1)
-
-
granodiorites (5)
-
lamprophyres (1)
-
monzodiorite (1)
-
pegmatite (2)
-
ultramafics
-
chromitite (1)
-
peridotites
-
lherzolite (1)
-
-
pyroxenite (4)
-
-
-
volcanic rocks
-
andesites (2)
-
basalts
-
flood basalts (1)
-
tholeiite (2)
-
tholeiitic basalt (1)
-
-
dacites (2)
-
glasses
-
obsidian (2)
-
-
pyroclastics
-
ash-flow tuff (1)
-
ignimbrite (1)
-
tuff (2)
-
-
rhyolites (4)
-
-
-
-
metamorphic rocks
-
metamorphic rocks
-
gneisses (1)
-
granulites
-
leptite (1)
-
-
impactites
-
impact breccia
-
lunar breccia (1)
-
-
-
metaigneous rocks
-
metadiabase (1)
-
-
metasedimentary rocks (3)
-
metasomatic rocks
-
skarn (1)
-
-
mylonites
-
pseudotachylite (4)
-
-
quartzites (1)
-
schists
-
greenschist (1)
-
greenstone (1)
-
-
-
-
minerals
-
arsenides
-
sperrylite (1)
-
-
carbonates
-
bastnaesite (1)
-
-
halides
-
fluorides
-
bastnaesite (1)
-
fluorite (1)
-
-
-
minerals (2)
-
oxides
-
anatase (1)
-
baddeleyite (1)
-
cassiterite (1)
-
chromite (1)
-
hematite (1)
-
ilmenite (1)
-
magnetite (2)
-
niobates
-
aeschynite (2)
-
betafite (1)
-
-
pitchblende (1)
-
tantalates
-
betafite (1)
-
-
ulvospinel (1)
-
-
phosphates
-
apatite (1)
-
britholite (1)
-
-
silicates
-
chain silicates
-
amphibole group
-
clinoamphibole
-
hornblende (1)
-
-
-
pyroxene group
-
clinopyroxene (1)
-
-
-
framework silicates
-
feldspar group
-
alkali feldspar
-
anorthoclase (1)
-
K-feldspar (1)
-
orthoclase (1)
-
sanidine (1)
-
-
plagioclase
-
albite (1)
-
anorthite (1)
-
bytownite (1)
-
labradorite (1)
-
-
-
myrmekite (2)
-
silica minerals
-
cristobalite (1)
-
quartz (4)
-
-
-
orthosilicates
-
nesosilicates
-
britholite group
-
britholite (1)
-
-
olivine group (1)
-
zircon group
-
zircon (15)
-
-
-
sorosilicates
-
chevkinite group
-
chevkinite (1)
-
-
epidote group
-
epidote (1)
-
-
thortveitite group
-
thortveitite (1)
-
-
-
-
ring silicates
-
tourmaline group (1)
-
-
-
sulfides
-
chalcopyrite (1)
-
cooperite (1)
-
cubanite (1)
-
laurite (1)
-
molybdenite (1)
-
pentlandite (1)
-
pyrrhotite (1)
-
-
-
Primary terms
-
absolute age (18)
-
Africa
-
Southern Africa
-
Kaapvaal Craton (1)
-
South Africa
-
Bushveld Complex (4)
-
Free State South Africa
-
Vredefort Dome (10)
-
-
Gauteng South Africa
-
Johannesburg South Africa (2)
-
-
Merensky Reef (1)
-
Transvaal region (3)
-
-
-
-
Arctic region
-
Greenland
-
East Greenland (2)
-
Skaergaard Intrusion (1)
-
South Greenland (1)
-
-
-
Asia
-
Arabian Peninsula
-
Yemen (1)
-
-
Buryat Russian Federation (1)
-
Far East
-
China
-
Yangtze Platform (1)
-
-
Japan
-
Honshu (1)
-
Kyushu (1)
-
Shikoku (1)
-
-
Vietnam (1)
-
-
Indian Peninsula
-
India
-
Gujarat India
-
Saurashtra (1)
-
-
-
-
Sayan
-
Eastern Sayan (1)
-
-
-
Australasia
-
Australia
-
Western Australia
-
Eastern Goldfields (1)
-
Pilbara Craton (1)
-
Yilgarn Craton (1)
-
-
-
-
Canada
-
Eastern Canada
-
Newfoundland and Labrador
-
Newfoundland (1)
-
-
Ontario
-
Sudbury Basin (2)
-
Sudbury igneous complex (11)
-
Sudbury Structure (5)
-
-
Quebec
-
Abitibi County Quebec
-
Chibougamau Quebec (1)
-
-
-
-
Labrador Trough (1)
-
Ungava (1)
-
-
carbon
-
C-14 (1)
-
-
Cenozoic
-
lower Cenozoic (1)
-
Quaternary
-
Holocene
-
upper Holocene (1)
-
-
-
Tertiary
-
lower Tertiary (1)
-
Neogene
-
Miocene (1)
-
-
Paleogene
-
Oligocene
-
Fish Canyon Tuff (1)
-
-
-
-
-
Central America
-
Costa Rica
-
Nicoya Peninsula (1)
-
-
-
chemical analysis (2)
-
construction materials
-
crushed stone (1)
-
-
crust (6)
-
crystal chemistry (1)
-
crystal growth (2)
-
deformation (1)
-
economic geology (3)
-
Europe
-
Murmansk Russian Federation
-
Kola Peninsula (1)
-
-
Southern Europe
-
Italy
-
Lombardy Italy
-
Varese Italy (2)
-
-
Sardinia Italy (1)
-
-
-
Western Europe
-
Ireland (1)
-
United Kingdom
-
Great Britain
-
England
-
Gloucestershire England (1)
-
Welsh Borderland (1)
-
-
Scotland
-
Argyllshire Scotland (1)
-
Hebrides
-
Inner Hebrides
-
Isle of Skye (1)
-
-
-
Highland region Scotland
-
Ardnamurchan (1)
-
Inverness-shire Scotland
-
Isle of Skye (1)
-
-
-
Scottish Highlands
-
Grampian Highlands (1)
-
-
-
Wales (2)
-
-
Northern Ireland (2)
-
-
-
-
faults (4)
-
folds (2)
-
fractures (4)
-
geochemistry (30)
-
geochronology (6)
-
geomorphology (1)
-
geophysical methods (1)
-
hydrogen
-
D/H (1)
-
deuterium (1)
-
-
igneous rocks
-
granophyre (86)
-
picrite (1)
-
plutonic rocks
-
anorthosite (2)
-
diabase
-
quartz diabase (1)
-
tholeiitic dolerite (1)
-
-
diorites
-
quartz diorites (1)
-
tonalite (1)
-
trondhjemite (1)
-
-
gabbros
-
labradoritite (1)
-
norite (13)
-
-
granites
-
adamellite (1)
-
alkali granites (1)
-
aplite (3)
-
A-type granites (2)
-
charnockite (1)
-
felsite (2)
-
granite porphyry (2)
-
graphic granite (2)
-
microgranite (3)
-
micropegmatite (1)
-
-
granodiorites (5)
-
lamprophyres (1)
-
monzodiorite (1)
-
pegmatite (2)
-
ultramafics
-
chromitite (1)
-
peridotites
-
lherzolite (1)
-
-
pyroxenite (4)
-
-
-
volcanic rocks
-
andesites (2)
-
basalts
-
flood basalts (1)
-
tholeiite (2)
-
tholeiitic basalt (1)
-
-
dacites (2)
-
glasses
-
obsidian (2)
-
-
pyroclastics
-
ash-flow tuff (1)
-
ignimbrite (1)
-
tuff (2)
-
-
rhyolites (4)
-
-
-
inclusions
-
fluid inclusions (1)
-
-
intrusions (38)
-
isotopes
-
radioactive isotopes
-
C-14 (1)
-
Os-187/Os-186 (1)
-
Rb-87/Sr-86 (1)
-
Sm-147/Nd-144 (2)
-
U-238/Pb-206 (1)
-
-
stable isotopes
-
D/H (1)
-
deuterium (1)
-
Nd-144/Nd-143 (3)
-
O-18/O-16 (4)
-
Os-187/Os-186 (1)
-
Os-188/Os-187 (1)
-
Rb-87/Sr-86 (1)
-
S-34/S-32 (1)
-
Sm-147/Nd-144 (2)
-
Sr-87/Sr-86 (11)
-
U-238/Pb-206 (1)
-
-
-
lava (7)
-
magmas (35)
-
mantle (1)
-
Mesozoic
-
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granophyre
Differentiated Archean Dolerites: Igneous and Emplacement Processes that Enhance Prospectivity for Orogenic Gold
ABSTRACT The Vredefort granophyre dikes have long been recognized as being derived from the now-eroded Vredefort melt sheet. One dike, in particular, the Daskop granophyre dike, is notable for a high abundance of lithic clasts derived from various stratigraphic levels. In this study, we mapped the distribution of the clasts throughout the continuously exposed section of the dike using field mapping and aerial drone photography and attempted to constrain the emplacement mechanisms of the dike. We found that the clasts are not homogeneously spread but instead are distributed between clast-rich zones, which have up to 50% by area clasts, and clast-poor zones, which have 0–10% by area clasts. We examined three models to explain this distribution: gravitational settling of clasts, thermally driven local assimilation of clasts, and mechanical sorting of clasts due to turbulent flow. Of the three models, the gravitational settling cannot be supported based on our field and geophysical data. The assimilation of clasts and turbulent flow of clasts, however, can both potentially result in inhomogeneous clast distribution. Zones of fully assimilated clasts and nonassimilated clasts can occur from spatial temperature differences of 100 °C. Mechanical sorting driven by a turbulent flow can also generate zones of inhomogeneous clast distribution. Both local assimilation and mechanical sorting due to turbulent flow likely contributed to the observed distribution of clasts.
ABSTRACT This contribution is concerned with the debated origin of the impact melt rock in the central uplift of the world’s largest confirmed impact structure—Vredefort (South Africa). New major- and trace-element abundances, including those of selected highly siderophile elements (HSEs), Re-Os isotope data, as well as the first Se isotope and Se-Te elemental systematics are presented for the felsic and mafic varieties of Vredefort impact melt rock known as “Vredefort Granophyre.” In addition to the long-recognized “normal” (i.e., felsic, >66 wt% SiO 2 ) granophyre variety, a more mafic (<66 wt% SiO 2 ) impact melt variety from Vredefort has been discussed for several years. The hypothesis that the mafic granophyre was formed from felsic granophyre through admixture (assimilation) of a mafic country rock component that then was melted and assimilated into the superheated impact melt has been pursued here by analysis of the two granophyre varieties, of the Dominion Group lava (actually meta-lava), and of epidiorite mafic country rock types. Chemical compositions, including high-precision isotope dilution–derived concentrations of selected highly siderophile elements (Re, Os, Ir, Pt, Se, Te), and Re-Os and Se isotope data support this hypothesis. A first-order estimate, based on these data, suggests that some mafic granophyre may have resulted from a significant admixture (assimilation) of epidiorite to felsic granophyre. This is in accordance with the findings of an earlier investigation using conventional isotope (Sr-Nd-Pb) data. Moreover, these outcomes are in contrast to a two-stage emplacement model for Vredefort Granophyre, whereby a mafic phase of impact melt, derived by differentiation of a crater-filling impact melt sheet, would have been emplaced into earlier-deposited felsic granophyre. Instead, all chemical and isotopic evidence so far favors formation of mafic granophyre by local assimilation of mafic country rock—most likely epidiorite—by a single intrusive impact melt phase, which is represented by the regionally homogeneous felsic granophyre.
Untying microscopic Gordian knots: The granular (zircon) details of impact basins
Genetic Relationship Between Postcratering Dynamics and Footwall Deposit Formation at Sudbury, Ontario, Canada: Importance for Sulfide Ore Exploration
Granular zircon from Vredefort granophyre (South Africa) confirms the deep injection model for impact melt in large impact structures
Comment on “Pseudotachylite vein hosted by a clast in the Vredefort Granophyre: characterization, origin and relevance” by E. Kovaleva et al., South African Journal of Geology, 2018, doi:10.25131/sajg.121.0002
Reply to the comment made by W.U. Reimold on “Pseudotachylite vein hosted by a clast in the Vredefort Granophyre: characterization, origin and relevance” by E. Kovaleva et al., South African Journal of Geology, 2018, 121, 51-68. doi:10.25131/sajg.121.0002
Strontium isotope systematics for plagioclase of the Skaergaard intrusion (East Greenland): A window to crustal assimilation, differentiation, and magma dynamics
Mineralogy, geochemistry and 40 Ar– 39 Ar geochronology of the Barda and Alech complexes, Saurashtra, northwestern Deccan Traps: early silicic magmas derived by flood basalt fractionation
Pseudotachylite vein hosted by a clast in the Vredefort Granophyre: characterization, origin and relevance
Submicrometer yttrian zircon coating and arborescent aeschynite microcrystals on truncated bipyramidal anatase: An electron microscopy study of miarolitic cavities in the Cuasso al Monte granophyre (Varese, Italy)
A geochemical contribution to the discussion about the genesis of impact-related pseudotachylitic breccias: Studies of PTB in the Otavi and Kudu Quarries of the Vredefort Dome support the “In Situ Formation” hypothesis
Differentiated impact melt sheets may be a potential source of Hadean detrital zircon: COMMENT
Differentiated impact melt sheets may be a potential source of Hadean detrital zircon: REPLY
Hydrothermal alteration of chevkinite-group minerals: products and mechanisms. Part 1. Hydration of chevkinite-(Ce)
Zircon formation in impact melts: Complications for deciphering planetary impact histories
We explore the formation conditions and inheritance probability of zircon in impact melts and the implications of using zircon geochronology to investigate planetary impact histories. By modeling the occurrence and crystallization temperature spectrum for zircon in simulated impact melts, we predict the presence of such grains within impactites. We also report U-Pb geochronology of sieve-textured, possibly poikilitic, zircon identified in the pseudotachylyte and granophyre units present within the largest known terrestrial impact crater (Vredefort, South Africa) to explore the accuracy of these grains in dating impact events at an impact structure of known age. Zircons with similar textures have been recently interpreted as growing in an impact melt in lunar meteorite SaU 169 and used to determine the age of the Imbrium impact. Modeling in simulated lunar melt compositions predicts crystallization of zircon in merely ~2% of melting events, in this case via impact. The modeled crystallization temperature spectrum is significantly below Ti-in-zircon crystallization temperatures reported from lunar samples. Zircon formation within an impact melt is dictated by saturation of [Zr] and requires a high abundance for lunar melt compositions. This essentially rules out the possibility of zircon growing in equilibrium with lunar meteorites. Poikilitic textures may be inherited from the lunar crust, presumably due to rapid decompression and/or resorption into an undersaturated magma, as previously recognized in plagioclase. Although either scenario could be due to an impact, endogenic processes cannot be ruled out, and thus lunar poikilitic zircons may not be recording impact melting events. Secondary ion mass spectrometry U-Pb analysis of zircon with similar textures from Vredefort clearly shows that these grains are inherited from the Archean target rocks, with varying degrees of Pb loss, and consequently cannot be used to accurately identify the age of the Vredefort impact structure. Further understanding of the growth and isotopic effects on zircon of shock and heating associated with large impacts could provide another tool that can be used to probe planetary impact histories.