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Carol Ann; Carol Ann No. 1; Carol Ann No. 2; Carol Ann No 3; Dotson Prospects, Bokan Mountain, Prince of Wales Island, Ketchikan Mining District, Prince of Wales-Hyder Census Area, Alaska, USAi
Regional Level Types
Carol Ann; Carol Ann No. 1; Carol Ann No. 2; Carol Ann No 3; Dotson ProspectsGroup of Prospects
Bokan MountainMountain
Prince of Wales IslandIsland
Ketchikan Mining DistrictMining District
Prince of Wales-Hyder Census AreaCensus Area
AlaskaState
USACountry

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Latitude & Longitude (WGS84):
54° 54' 19'' North , 132° 6' 24'' West
Latitude & Longitude (decimal):
Type:
Group of Prospects
Köppen climate type:
Nearest Settlements:
PlacePopulationDistance
Ketchikan8,197 (2017)56.6km
Mindat Locality ID:
196814
Long-form identifier:
mindat:1:2:196814:2
GUID (UUID V4):
0


Location: The three Carol Ann prospects are associated with a series of parallel mineralized dikes that extend about N45W for at least 3,000 feet. The coordinates are at near the center of the prospect area, about 1.9 miles southeast of Bokan Mountain, near the middle of the N1/2 section 26, T. 80 S., R. 88 E. The locations of the Carol Ann prospects relative to the other uranium and REE prospects in the vicinity of Bokan Mountain are best shown on Plate 1 of MacKevett (1963).
Geology: This and several other nearby uranium-thorium-REE deposits (DE015 to DE026 and DE028 to DE031) are spatially and genetically related to a stock of Jurassic, peralkaline granite about 2 miles in outcrop diameter centered on Bokan Mountain. It commonly is referred to as the Bokan Mountain peralkakline granite or Bokan Mountain complex. The intrusion and its deposits have been mapped in detail several times using slightly different subdivisions of the granite (MacKevett, 1963; Thompson and others, 1980, 1982; Saint-Andre and others, 1983; Gehrels, 1992; Thompson, 1997). This description largely follows Gehrels' (1992) map units. The intrusion is a ring-dike complex with an outer border zone up to 14 meters thick of pegmatite and aplite; a nearly complete intermediate zone of aegirine granite porphyry, 15 to 180 meters thick; and a core of several varieties of riebeckite granite porphyry. It has been dated by several methods at 151 Ma to 191 Ma (Lanphere and others, 1964; Saint-Andre and others, 1983; Armstrong, 1985; Gehrels, 1992; Thompson, 1997). The peralkaline granite mainly intrudes a regionally extensive body of Silurian or Ordovician quartz monzonite, granite, and quartz diorite that makes up much of the southeast tip of Prince of Wales Island. The south and west sides of the peralkaline granite are in contact with a band up to about 3,000 feet wide of shale and argillite of the Silurian or Ordovician Descon Formation. The Bokan Mountain complex and surrounding Paleozoic rocks are cut by numerous pegmatite, andesite, dacite, and aplite dikes. The dikes are genetically related to the complex and commonly are associated with the uranium, thorium, and REE deposits. The deposits are marked by intense albitization, pervasive or fracture-controlled chloritization, calcite-fluorite replacement of aegirine, and hematitization. Three types of U-Th-REE deposits occur in the Bokan Mountain complex: 1) irregular cylindrical pipes; 2) steep, shear-zone-related pods or lenses ('veins'); and 3) quartz veins. MacKevett (1963) describes three prospects under the name Carol Ann as surface pits on three claims located in 1955. The prospects are on a series of steep, subparallel, allanite-bearing andesite dikes that strike about N60-75W for at least 3,500 feet. The dikes radiate out from the Bokan Mountain peralkaline granite into Silurian or Ordovician quartz monzonite. Warner and Barker (1989) describes these prospects under the name Dotson and extend the dikes northwest to the I & L Nos. 3-5 prospects (DE023) at the periphery of the Bokan Mountain alkaline granite. Several parallel dikes occur over a width of less than 100 feet to 200 feet; the individual dikes vary in width from 0.6 feet to 3.1 feet. To northwest, near the Bokan Mountain granite, the dikes are pegmatitic; to the southeast, they generally are medium- to fine-grained and equigranular. The mineralization occurs in microfractures or in the interstices between silicate grains. The dominant radioactive mineral is allanite. Scanning electron microscope study shows that the REE minerals are mainly thalenite, bastnaesite, and allanite, with subordinate tengerite, parisite, synchysite, an unnamed REE flurocarbonate mineral, monazite, and xenotime. The columbium-bearing mineral is mainly euxenite-polycrase, accompanied by subordinate columbite-tantalite, samarskite, fergusonite, and aeschynite. The main radioactive mineral is thorite but uranothorite is also present. Warner and Barker (1989) estimate a total indicated resource of 2,039,000 short tons of rock in the Dotson dike system that contains 2,353,000 pounds of columbium, 326,000 pounds of uranium, 3,666,000 pounds of yttrium, 2,541,000 pounds of thorium, and 4,567,000 pounds of REE. The total inferred resource is 8,490,000 short tons of rock that contains 12,260,000 pounds of columbium, 7,726,000 pounds of thorium, 1,647,000 pounds of uranium, 18,457,000 pounds of yttrium, 33,280,000 pounds of zirconium, and 30,428,000 pounds of REE.
Workings: Only prospect pits.
Age: Genetically related to the Jurassic, Bokan Mountain peralkaline granite.
Alteration: These prospects and the other uranium, thorium, and REE deposits associated with the Bokan Mountain peralkaline granite are marked by albitization, chloritization, and argillization. Minor calcite, fluorite, quartz, sulfide minerals, and tourmaline are common in the altered rocks and hematite often occurs in the periphery of high-grade ore zones.
Reserves: Warner and Barker (1989) estimate a total indicated resource of 2,039,000 short tons of rock in the Dotson dike system that contains 2,353,000 pounds of columbium, 326,000 pounds of uranium, 3,666,000 pounds of yttrium, 2,541,000 pounds of thorium, and 4,567, 000 pounds of REE. The total inferred resource is 8,490,000 short tons of rock that contains 12,260,000 pounds of columbium, 7,726,000 pounds of thorium, 1,647,000 pounds of uranium, 18,457,000 pounds of yttrium, 33,280,000 pounds of zirconium, and 30,428,000 pounds of REE.

Commodities (Major) - Cb, REE, Th, U, Y
Deposit Model: U-Th-REE deposit associated with peralkaline granite.

Select Mineral List Type

Standard Detailed Gallery Strunz Chemical Elements

Commodity List

This is a list of exploitable or exploited mineral commodities recorded at this locality.


Mineral List


27 valid minerals.

Rock Types Recorded

Note: data is currently VERY limited. Please bear with us while we work towards adding this information!

Select Rock List Type

Alphabetical List Tree Diagram

Detailed Mineral List:

Aegirine
Formula: NaFe3+Si2O6
Aegirine-augite
Formula: (NaaCabFe2+cMgd)(Fe3+eAlfFe2+gMgh)Si2O6
'Aeschynite'
Albite
Formula: Na(AlSi3O8)
'Allanite Group'
Formula: (A12+REE3+)(M13+M23+M32+)O[Si2O7][SiO4](OH)
Andradite
Formula: Ca3Fe3+2(SiO4)3
Baryte
Formula: BaSO4
'Bastnäsite'
Formula: (Ce/Nd/Y/REE)(CO3)F
'Biotite'
Formula: K(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
Calcite
Formula: CaCO3
Calcite var. Manganese-bearing Calcite
Formula: (Ca,Mn)CO3
Cassiterite
Formula: SnO2
Cerianite-(Ce)
Formula: (Ce4+,Th)O2
Cerussite
Formula: PbCO3
'Columbite-Tantalite'
Cordierite
Formula: (Mg,Fe)2Al3(AlSi5O18)
Cordierite var. Iolite
Formula: (Mg,Fe)2Al3(AlSi5O18)
Diopside
Formula: CaMgSi2O6
'Feldspar Group'
'Fergusonite'
Fersmite
Formula: CaNb2O6
Fluorite
Formula: CaF2
Galena
Formula: PbS
Gittinsite
Formula: CaZrSi2O7
Ilmenite
Formula: Fe2+TiO3
Ilmenite var. Manganese-bearing Ilmenite
Formula: (Fe,Mn)2+TiO3
'K Feldspar'
Magnetite
Formula: Fe2+Fe3+2O4
Microcline
Formula: K(AlSi3O8)
'Monazite Group'
Formula: REE(PO4)
'Parisite'
Formula: Ca(Ce/La/Nd/REE)2(CO3)3F2
Perite
Formula: PbBiClO2
Pyrite
Formula: FeS2
'Pyrochlore Group'
Formula: A2Nb2(O,OH)6Z
'Pyroxene Group'
Formula: ADSi2O6
Quartz
Formula: SiO2
Samarskite-(Y)
Formula: YFe3+Nb2O8
Sphalerite
Formula: ZnS
'Synchysite'
Formula: Ca(Ce/Nd/Y/REE)(CO3)2F
'Synchysite Group'
Thorite
Formula: Th(SiO4)
Thorite var. Uranothorite
Formula: (Th,U)SiO4
Titanite
Formula: CaTi(SiO4)O
'Tritomite'
'Xenotime'
Xenotime-(Y)
Formula: Y(PO4)
Zircon
Formula: Zr(SiO4)
Zircon var. Ribeirite
Formula: Zr(SiO4)

Gallery:

List of minerals arranged by Strunz 10th Edition classification

Group 2 - Sulphides and Sulfosalts
Sphalerite2.CB.05aZnS
Galena2.CD.10PbS
Pyrite2.EB.05aFeS2
Group 3 - Halides
Fluorite3.AB.25CaF2
Perite3.DC.30PbBiClO2
Group 4 - Oxides and Hydroxides
'Pyrochlore Group'4.00.A2Nb2(O,OH)6Z
Magnetite4.BB.05Fe2+Fe3+2O4
Ilmenite4.CB.05Fe2+TiO3
var. Manganese-bearing Ilmenite4.CB.05(Fe,Mn)2+TiO3
Quartz4.DA.05SiO2
Cassiterite4.DB.05SnO2
Samarskite-(Y)4.DB.25YFe3+Nb2O8
Fersmite4.DG.05CaNb2O6
Cerianite-(Ce)4.DL.05(Ce4+,Th)O2
Group 5 - Nitrates and Carbonates
Calcite5.AB.05CaCO3
var. Manganese-bearing Calcite5.AB.05(Ca,Mn)CO3
Cerussite5.AB.15PbCO3
Group 7 - Sulphates, Chromates, Molybdates and Tungstates
Baryte7.AD.35BaSO4
Group 8 - Phosphates, Arsenates and Vanadates
Xenotime-(Y)8.AD.35Y(PO4)
Group 9 - Silicates
Andradite9.AD.25Ca3Fe3+2(SiO4)3
Zircon
var. Ribeirite
9.AD.30Zr(SiO4)
Thorite9.AD.30Th(SiO4)
Zircon9.AD.30Zr(SiO4)
Thorite
var. Uranothorite
9.AD.30(Th,U)SiO4
Titanite9.AG.15CaTi(SiO4)O
Gittinsite9.BC.05CaZrSi2O7
Cordierite9.CJ.10(Mg,Fe)2Al3(AlSi5O18)
var. Iolite9.CJ.10(Mg,Fe)2Al3(AlSi5O18)
Diopside9.DA.15CaMgSi2O6
Aegirine-augite9.DA.20(NaaCabFe2+cMgd)(Fe3+eAlfFe2+gMgh)Si2O6
Aegirine9.DA.25NaFe3+Si2O6
Microcline9.FA.30K(AlSi3O8)
Albite9.FA.35Na(AlSi3O8)
Unclassified
'Aeschynite'-
'Bastnäsite'-(Ce/Nd/Y/REE)(CO3)F
'Biotite'-K(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
'Feldspar Group'-
'Monazite Group'-REE(PO4)
'Xenotime'-
'Parisite'-Ca(Ce/La/Nd/REE)2(CO3)3F2
'Synchysite'-Ca(Ce/Nd/Y/REE)(CO3)2F
'Tritomite'-
'K Feldspar'-
'Pyroxene Group'-ADSi2O6
'Columbite-Tantalite'-
'Fergusonite'-
'Synchysite Group'-
'Allanite Group'-(A12+REE3+)(M13+M23+M32+)O[Si2O7][SiO4](OH)

List of minerals for each chemical element

HHydrogen
H BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
H Pyrochlore GroupA2Nb2(O,OH)6Z
H Allanite Group(A12+REE3+)(M13+M23+M32+)O[Si2O7][SiO4](OH)
CCarbon
C Bastnäsite(Ce/Nd/Y/REE)(CO3)F
C CalciteCaCO3
C CerussitePbCO3
C Calcite var. Manganese-bearing Calcite(Ca,Mn)CO3
C ParisiteCa(Ce/La/Nd/REE)2(CO3)3F2
C SynchysiteCa(Ce/Nd/Y/REE)(CO3)2F
OOxygen
O AegirineNaFe3+Si2O6
O Aegirine-augite(NaaCabFec2+Mgd)(Fee3+AlfFeg2+Mgh)Si2O6
O AlbiteNa(AlSi3O8)
O AndraditeCa3Fe23+(SiO4)3
O BaryteBaSO4
O Bastnäsite(Ce/Nd/Y/REE)(CO3)F
O BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
O CalciteCaCO3
O CassiteriteSnO2
O Cerianite-(Ce)(Ce4+,Th)O2
O CerussitePbCO3
O Cordierite(Mg,Fe)2Al3(AlSi5O18)
O DiopsideCaMgSi2O6
O FersmiteCaNb2O6
O GittinsiteCaZrSi2O7
O IlmeniteFe2+TiO3
O Calcite var. Manganese-bearing Calcite(Ca,Mn)CO3
O MagnetiteFe2+Fe23+O4
O MicroclineK(AlSi3O8)
O Monazite GroupREE(PO4)
O PeritePbBiClO2
O Pyrochlore GroupA2Nb2(O,OH)6Z
O QuartzSiO2
O Zircon var. RibeiriteZr(SiO4)
O Samarskite-(Y)YFe3+Nb2O8
O ThoriteTh(SiO4)
O TitaniteCaTi(SiO4)O
O Xenotime-(Y)Y(PO4)
O ZirconZr(SiO4)
O Cordierite var. Iolite(Mg,Fe)2Al3(AlSi5O18)
O ParisiteCa(Ce/La/Nd/REE)2(CO3)3F2
O SynchysiteCa(Ce/Nd/Y/REE)(CO3)2F
O Thorite var. Uranothorite(Th,U)SiO4
O Pyroxene GroupADSi2O6
O Ilmenite var. Manganese-bearing Ilmenite(Fe,Mn)2+TiO3
O Allanite Group(A12+REE3+)(M13+M23+M32+)O[Si2O7][SiO4](OH)
FFluorine
F Bastnäsite(Ce/Nd/Y/REE)(CO3)F
F BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
F FluoriteCaF2
F ParisiteCa(Ce/La/Nd/REE)2(CO3)3F2
F SynchysiteCa(Ce/Nd/Y/REE)(CO3)2F
NaSodium
Na AegirineNaFe3+Si2O6
Na Aegirine-augite(NaaCabFec2+Mgd)(Fee3+AlfFeg2+Mgh)Si2O6
Na AlbiteNa(AlSi3O8)
MgMagnesium
Mg Aegirine-augite(NaaCabFec2+Mgd)(Fee3+AlfFeg2+Mgh)Si2O6
Mg BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
Mg Cordierite(Mg,Fe)2Al3(AlSi5O18)
Mg DiopsideCaMgSi2O6
Mg Cordierite var. Iolite(Mg,Fe)2Al3(AlSi5O18)
AlAluminium
Al Aegirine-augite(NaaCabFec2+Mgd)(Fee3+AlfFeg2+Mgh)Si2O6
Al AlbiteNa(AlSi3O8)
Al BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
Al Cordierite(Mg,Fe)2Al3(AlSi5O18)
Al MicroclineK(AlSi3O8)
Al Cordierite var. Iolite(Mg,Fe)2Al3(AlSi5O18)
SiSilicon
Si AegirineNaFe3+Si2O6
Si Aegirine-augite(NaaCabFec2+Mgd)(Fee3+AlfFeg2+Mgh)Si2O6
Si AlbiteNa(AlSi3O8)
Si AndraditeCa3Fe23+(SiO4)3
Si BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
Si Cordierite(Mg,Fe)2Al3(AlSi5O18)
Si DiopsideCaMgSi2O6
Si GittinsiteCaZrSi2O7
Si MicroclineK(AlSi3O8)
Si QuartzSiO2
Si Zircon var. RibeiriteZr(SiO4)
Si ThoriteTh(SiO4)
Si TitaniteCaTi(SiO4)O
Si ZirconZr(SiO4)
Si Cordierite var. Iolite(Mg,Fe)2Al3(AlSi5O18)
Si Thorite var. Uranothorite(Th,U)SiO4
Si Pyroxene GroupADSi2O6
Si Allanite Group(A12+REE3+)(M13+M23+M32+)O[Si2O7][SiO4](OH)
PPhosphorus
P Monazite GroupREE(PO4)
P Xenotime-(Y)Y(PO4)
SSulfur
S BaryteBaSO4
S GalenaPbS
S PyriteFeS2
S SphaleriteZnS
ClChlorine
Cl PeritePbBiClO2
KPotassium
K BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
K MicroclineK(AlSi3O8)
CaCalcium
Ca Aegirine-augite(NaaCabFec2+Mgd)(Fee3+AlfFeg2+Mgh)Si2O6
Ca AndraditeCa3Fe23+(SiO4)3
Ca CalciteCaCO3
Ca DiopsideCaMgSi2O6
Ca FersmiteCaNb2O6
Ca FluoriteCaF2
Ca GittinsiteCaZrSi2O7
Ca Calcite var. Manganese-bearing Calcite(Ca,Mn)CO3
Ca TitaniteCaTi(SiO4)O
Ca ParisiteCa(Ce/La/Nd/REE)2(CO3)3F2
Ca SynchysiteCa(Ce/Nd/Y/REE)(CO3)2F
TiTitanium
Ti BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
Ti IlmeniteFe2+TiO3
Ti TitaniteCaTi(SiO4)O
Ti Ilmenite var. Manganese-bearing Ilmenite(Fe,Mn)2+TiO3
MnManganese
Mn Calcite var. Manganese-bearing Calcite(Ca,Mn)CO3
Mn Ilmenite var. Manganese-bearing Ilmenite(Fe,Mn)2+TiO3
FeIron
Fe AegirineNaFe3+Si2O6
Fe Aegirine-augite(NaaCabFec2+Mgd)(Fee3+AlfFeg2+Mgh)Si2O6
Fe AndraditeCa3Fe23+(SiO4)3
Fe BiotiteK(Fe2+/Mg)2(Al/Fe3+/Mg/Ti)([Si/Al/Fe]2Si2O10)(OH/F)2
Fe Cordierite(Mg,Fe)2Al3(AlSi5O18)
Fe IlmeniteFe2+TiO3
Fe MagnetiteFe2+Fe23+O4
Fe PyriteFeS2
Fe Samarskite-(Y)YFe3+Nb2O8
Fe Cordierite var. Iolite(Mg,Fe)2Al3(AlSi5O18)
Fe Ilmenite var. Manganese-bearing Ilmenite(Fe,Mn)2+TiO3
ZnZinc
Zn SphaleriteZnS
YYttrium
Y Bastnäsite(Ce/Nd/Y/REE)(CO3)F
Y Samarskite-(Y)YFe3+Nb2O8
Y Xenotime-(Y)Y(PO4)
Y SynchysiteCa(Ce/Nd/Y/REE)(CO3)2F
ZrZirconium
Zr GittinsiteCaZrSi2O7
Zr Zircon var. RibeiriteZr(SiO4)
Zr ZirconZr(SiO4)
NbNiobium
Nb FersmiteCaNb2O6
Nb Pyrochlore GroupA2Nb2(O,OH)6Z
Nb Samarskite-(Y)YFe3+Nb2O8
SnTin
Sn CassiteriteSnO2
BaBarium
Ba BaryteBaSO4
LaLanthanum
La ParisiteCa(Ce/La/Nd/REE)2(CO3)3F2
CeCerium
Ce Bastnäsite(Ce/Nd/Y/REE)(CO3)F
Ce Cerianite-(Ce)(Ce4+,Th)O2
Ce ParisiteCa(Ce/La/Nd/REE)2(CO3)3F2
Ce SynchysiteCa(Ce/Nd/Y/REE)(CO3)2F
NdNeodymium
Nd Bastnäsite(Ce/Nd/Y/REE)(CO3)F
Nd ParisiteCa(Ce/La/Nd/REE)2(CO3)3F2
Nd SynchysiteCa(Ce/Nd/Y/REE)(CO3)2F
PbLead
Pb CerussitePbCO3
Pb GalenaPbS
Pb PeritePbBiClO2
BiBismuth
Bi PeritePbBiClO2
ThThorium
Th Cerianite-(Ce)(Ce4+,Th)O2
Th ThoriteTh(SiO4)
Th Thorite var. Uranothorite(Th,U)SiO4
UUranium
U Thorite var. Uranothorite(Th,U)SiO4

Other Databases

Link to USGS - Alaska:DE027

Other Regions, Features and Areas containing this locality


This page contains all mineral locality references listed on mindat.org. This does not claim to be a complete list. If you know of more minerals from this site, please register so you can add to our database. This locality information is for reference purposes only. You should never attempt to visit any sites listed in mindat.org without first ensuring that you have the permission of the land and/or mineral rights holders for access and that you are aware of all safety precautions necessary.

References

Armstrong, R. L., 1985, Rb-Sr dating of the Bokan Mountain granite complex and its country rocks: Canadian Journal of Earth Sciences, v. 22, p. 1233-1236. Cobb, E. H., 1978, Summary of references to mineral occurrences (other than mineral fuels and construction materials) in the Dixon Entrance quadrangle, Alaska: U.S. Geological Survey Open-File Report 78-863, 34 p. Collett, B., 1981, Le granite albitique hyperalcalin de Bokan Mountain, S.E. Alaska et ses mineralisations U-Th. Sa place dans la cordillere canadienne: Doct. 3 degree cycle theseis, Montpellier II University, Montpellier, France, 238 p. Denny, R. L., 1962, Operations at the Ross-Adams uranium deposit, Dixon Entrance quadrangle, in Williams, J.A., Report of the Division of Mines and Minerals for the year 1962: Alaska Division of Geological & Geophysical Surveys, Annual Report 1962, p. 89-93. Freeman, V.L., 1963, Examination of uranium prospects, 1956, in Contributions to economic geology of Alaska: U.S. Geological Survey Bulletin 1155, p. 29-33. Gehrels, G. E., 1992, Geologic map of southern Prince of Wales Island, southeastern Alaska: U.S. Geological Survey Miscellaneous Investigations Series Map I-2169, 23 p., 1 sheet, scale 1:63,360. Lanphere, M. A., MacKevett, E. M., and Stern, T. W., 1964, Potassium-argon and lead-alpha ages of plutonic rocks, Bokan Mountain area, Alaska: Science, v. 145, p. 705-707. Maas, K.M., Bittenbender, P E., and Still, J.C., 1995, Mineral investigations in the Ketchikan mining district, southeastern Alaska: U.S. Bureau of Mines Open-File Report 11-95, 606 p. MacKevett, E.M., Jr., 1963, Geology and ore deposits of the Bokan Mountain uranium-thorium area, southeastern Alaska: U.S. Geological Survey Bulletin 1154, 125 p. Matzko, J.J., and Freeman, V.L., 1963 Summary of reconnaissance for Uranium in Alaska, 1955: U.S. Geological Survey Bulletin 1155, p. 33-49. Philpotts, J.A., Taylor, C.D., and Baedecker, P.A., 1996, Rare-earth enrichment at Bokan Mountain, sou
 
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