Vote for your favorite mineral in #MinCup26! - Quartz vs. Asagiite
It's a classic vs a newbie as the most common named mineral in the crust Quartz is up against an exceedingly-rare sea foam-green mineral discovered just a few years ago Asagiite.
Log InRegister
Quick Links : The Mindat ManualThe Rock H. Currier Digital LibraryMindat Newsletter [Free Download]
Home PageAbout MindatThe Mindat ManualHistory of MindatCopyright StatusWho We AreContact UsAdvertise on Mindat
Donate to MindatCorporate SponsorshipSponsor a PageSponsored PagesMindat AdvertisersAdvertise on Mindat
Learning CenterWhat is a mineral?The most common minerals on earthInformation for EducatorsMindat ArticlesThe ElementsThe Rock H. Currier Digital LibraryGeologic TimeExplore Fossils
Minerals by PropertiesMinerals by ChemistryMineral Visual ExplorerAdvanced Locality SearchRandom MineralRandom LocalitySearch by minIDLocalities Near MeSearch ArticlesSearch GlossaryMore Search Options
Search For:
Mineral Name:
Locality Name:
Keyword(s):
 
The Mindat ManualAdd a New PhotoRate PhotosLocality Edit ReportCoordinate Completion ReportAdd Glossary Item
Mining CompaniesStatisticsUsersMineral MuseumsClubs & OrganizationsMineral Shows & EventsThe Mindat DirectoryDevice SettingsThe Mineral QuizTime Machine
Photo SearchPhoto GalleriesSearch by ColorPhoto Colour ExplorerNew Photos TodayNew Photos YesterdayMembers' Photo GalleriesPast Photo of the Day GalleryPhotography

Atlin-Ruffner Mine, Atlin Mining Division, British Columbia, Canadai
Regional Level Types
Atlin-Ruffner MineMine
Atlin Mining DivisionDivision
British ColumbiaProvince
CanadaCountry

This page is currently not sponsored. Click here to sponsor this page.
PhotosMapsSearch
Latitude & Longitude (WGS84):
59° 44' 8'' North , 133° 31' 18'' West
Latitude & Longitude (decimal):
Type:
Mindat Locality ID:
248497
Long-form identifier:
mindat:1:2:248497:9
GUID (UUID V4):
0


A Au-Ag-Pb-Zn deposit in shear zone of lamprophyre dykes. Operated between 1921 and 1933
I05 : Polymetallic veins Ag-Pb-Zn+/-Au

The Atlin-Ruffner mine, composed primarily of the Ruffner and Big Canyon claim groups, is located on Crater Creek which drains west into the Fourth of July Creek. The mine is about 23 kilometres northeast of Atlin, British Columbia.
The following quote is from B.C. Government site “Minfile”- Minfile No. 104N 001, current to 2015:
“The occurrence lies completely within the Middle Jurassic Fourth of July Creek batholith which covers about 780 square kilometres northeast of Atlin. It is composed of both monzonitic and quartz dioritic phases and in the area of the Atlin Ruffner mine is composed of feldspar porphyritic quartz syenite to granite. The batholith has intruded into Carboniferous-Jurassic Cache Creek Complex rocks.
Mineralization on the property is associated with dark green, pyroxene-bearing lamprophyre dikes which strike 070 degrees and dip 85 degrees to the northwest. The dikes are abundant, parallel and from 2 to 10 metres thick. They follow older fracture zones and have been the host for younger fracturing, shearing and veining. The dikes are not commonly seen outside the batholith and have also been crosscut by the younger, Late Cretaceous Surprise Lake batholith. These relationships suggest that the mafic dikes may be in part coeval with the Jurassic Fourth of July Creek batholith and represent a residual, differentiated mafic portion of the same parent magma emplaced only slightly after the main body.
Possibly because of their brittle more competent nature, the dikes host later shearing, veining and fracturing. Four of these dikes are replaced by ankerite-quartz-calcite veining and shear zones. They are heavily mineralized with galena, sphalerite and arsenopyrite with lesser pyrite and chalcopyrite. Mineralization is lensy and not laterally continuous. Ore has been produced from these structures from 1916 to 1981 with an average grade of 0.42 gram per tonne gold, 267 grams per tonne silver and 5 per cent combined lead-zinc. Mineralization occurs in four major zones (Assessment Report 18646).
The dikes usually host the mineralization, and clearly predate the mineralization, as in many cases brecciated dike rock fragments are found in the quartz-carbonate-sulphide assemblages that constitute the ore. Mineralization includes varying amounts of sphalerite, galena, arsenopyrite, pyrite, pyrrhotite, chalcopyrite, pyrargyrite (with trace amounts of tetrahedrite, molybdenite, scheelite, and cassiterite) in a quartz-calcite gangue. Across the mineralized veins/shears,which typically are 1 to 2 metres in width, there is a crude segregation of sulphide mineralogy, from sphalerite-rich hangingwall, through a galena-rich core, to an arsenopyrite-rich footwall. High grade silver values are commonly associated with galena-rich zones, and gold values with arsenopyrite-rich zones. Four major vein/shear systems have been identified to date, with underground development and production having taken place on two of them.”
Comments by Giles Peatfield regarding some of the minerals reported:
Argyrodite: Rebagliati (1962) reported traces of argyrodite, with tennantite, proustite and galena. He based his identification on microscopy and etch tests. There was no X-ray confirmation. I would regard this as tentative for the locality.
Bornite: This was reported only by Buckland (1931), occurring in one of his polished sections of material from near surface. He regarded it as a secondary mineral. I would regard it as valid for the locality.
Cassiterite: The only available reference to cassiterite at Atlin-Ruffner is by McIvor (1989), who gave no details. Given the regional geological setting, I would regard it as possible, but tentative for the locality.
Covellite: The only reference for covellite was by Rebagliati (1962), who identified it based on micrography and etch tests. I would regard it as valid for the locality.
Enargite: Smith (1974) noted that Dr. J. A. Chamberlain of the consulting firm Dolmage, Campbell and Associates, in an unpublished report dated February 05 1969, identified several minerals, including enargite. I am prepared to accept the mineral as valid for the locality.
Fluorite: Gordy (1955) reported fluorite in quartz specimens, but was not certain that these were actually from the property. Dr. R. M. Thompson’s comment was “Why not?” Given this, and the general geology of the region, I would regard fluorite as probable for the locality.
Gold: Gordy (1955) was the only one to report native gold, which he found in one of his polished sections. He noted that “The color of the gold is pale yellow, possibly indicating a relatively high silver content.”
Molybdenite: Gordy (1955) reported molybdenite in one quartz specimen, and had the same thought as for fluorite. The mineral was also reported by McIvor (1989) – I would regard it as valid for the locality.
Proustite: Rebagliati (1962) identified proustite based on micrography and etch tests. I would regard it as valid for the locality.
Scheelite: The only available reference to scheelite at Atlin-Ruffner is by McIvor (1989), who gave no details. Given the regional geological setting, I would regard it as possible, but tentative for the locality.
Silver (native): The only reference to native silver is in a fragment of a report (B.C. Minfile PF020045), anonymous and un-dated. I would regard this as tentative for the locality.
Stannite?: Gordy (1955) reported stannite, basing his identification on microscopy and etch tests. Dr. R. M. Thompson’s comment was “require[s] X-ray confirmation. I would regard it as possible for the locality.
Stephanite?: Gordy (1955) reported stephanite, basing his identification on microscopy and etch tests. Dr. R. M. Thompson’s comment was “require[s] X-ray confirmation. I would regard it as possible for the locality.
Sternbergite?: Rebagliati (1962) tentatively identified sternbergite based on micrography and etch tests, but was uncertain because of a lack of reaction to HCl, which Short (1940) listed as characteristic for the mineral. Dr. R. M. Thompson appears to have approved the identification. I would regard it as possible for the locality.
Tennantite: Rebagliati (1962) identified tennantite based on micrography and etch tests, adding that a microchemical test for As was positive whereas that for Sb was “very very weak to negative.” I would class this as probable for the locality, although Rebagliati also mentioned tetrahedrite, which was reported by several other workers.
Comments by Giles Peatfield regarding some of the rock types reported:
Aplite: Donaldson (1953) and Gordy (1955) both described small aplite dykes in the area of mineralization.
Granite: Cockfield (1926) described the principal intrusive rock as “granite”, and gave a detailed description. Later workers have reported “diorite and granodiorite” (Bloodgood et al., 1989) or “quartz diorite and diorite” (Donaldson, 1953; Gordy, 1955), or “quartz monzonite” (Aitken, 1959), or other names (see Minfile quote above), but I think it would seem best to retain Cockfield’s original name.
Hornblende lamprophyre: Cockfield (1926) described the dyke rocks in some detail, and applied the name “hornblende lamprophyre”. Other have described the dyke rocks as “dioritic to diabasic” (Bloodgood, et al. 1989), or as “andesite dykes” (Rebagliati, 1962). I would prefer to retain Cockfield’s name.

Select Mineral List Type

Standard Detailed Gallery Strunz Chemical Elements

Mineral List


25 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:

Ankerite
Formula: Ca(Fe2+,Mg)(CO3)2
Argyrodite
Formula: Ag8GeS6
Arsenopyrite
Formula: FeAsS
Bornite
Formula: Cu5FeS4
Calcite
Formula: CaCO3
Cassiterite
Formula: SnO2
Chalcopyrite
Formula: CuFeS2
Covellite
Formula: CuS
Enargite
Formula: Cu3AsS4
Fluorite
Formula: CaF2
Galena
Formula: PbS
'Hornblende Root Name Group'
Formula: ◻Ca2(Z2+4Z3+)(AlSi7O22)(OH,F,Cl)2
Marcasite
Formula: FeS2
Molybdenite
Formula: MoS2
Native Gold
Formula: Au
Native Silver
Formula: Ag
Proustite
Formula: Ag3AsS3
Pyrargyrite
Formula: Ag3SbS3
Pyrite
Formula: FeS2
'Pyroxene Group'
Formula: ADSi2O6
Pyrrhotite
Formula: Fe1-xS
Quartz
Formula: SiO2
Scheelite
Formula: Ca(WO4)
Sphalerite
Formula: ZnS
Stannite ?
Formula: Cu2FeSnS4
Stephanite ?
Formula: Ag5SbS4
Sternbergite ?
Formula: AgFe2S3
'Tetrahedrite Subgroup'
Formula: Cu6(Cu4C2+2)Sb4S12S

Gallery:

List of minerals arranged by Strunz 10th Edition classification

Group 1 - Elements
Native Gold1.AA.05Au
Native Silver1.AA.05Ag
Group 2 - Sulphides and Sulfosalts
Bornite2.BA.15Cu5FeS4
Argyrodite2.BA.70Ag8GeS6
Covellite2.CA.05aCuS
Sphalerite2.CB.05aZnS
Chalcopyrite2.CB.10aCuFeS2
Stannite ?2.CB.15aCu2FeSnS4
Sternbergite ?2.CB.65AgFe2S3
Pyrrhotite2.CC.10Fe1-xS
Galena2.CD.10PbS
Molybdenite2.EA.30MoS2
Pyrite2.EB.05aFeS2
Marcasite2.EB.10aFeS2
Arsenopyrite2.EB.20FeAsS
Proustite2.GA.05Ag3AsS3
Pyrargyrite2.GA.05Ag3SbS3
'Tetrahedrite Subgroup'2.GB.05Cu6(Cu4C2+2)Sb4S12S
Stephanite ?2.GB.10Ag5SbS4
Enargite2.KA.05Cu3AsS4
Group 3 - Halides
Fluorite3.AB.25CaF2
Group 4 - Oxides and Hydroxides
Quartz4.DA.05SiO2
Cassiterite4.DB.05SnO2
Group 5 - Nitrates and Carbonates
Calcite5.AB.05CaCO3
Ankerite5.AB.10Ca(Fe2+,Mg)(CO3)2
Group 7 - Sulphates, Chromates, Molybdates and Tungstates
Scheelite7.GA.05Ca(WO4)
Unclassified
'Hornblende Root Name Group'-◻Ca2(Z2+4Z3+)(AlSi7O22)(OH,F,Cl)2
'Pyroxene Group'-ADSi2O6

List of minerals for each chemical element

HHydrogen
H Hornblende Root Name Group◻Ca2(Z42+Z3+)(AlSi7O22)(OH,F,Cl)2
CCarbon
C AnkeriteCa(Fe2+,Mg)(CO3)2
C CalciteCaCO3
OOxygen
O AnkeriteCa(Fe2+,Mg)(CO3)2
O CalciteCaCO3
O CassiteriteSnO2
O QuartzSiO2
O ScheeliteCa(WO4)
O Hornblende Root Name Group◻Ca2(Z42+Z3+)(AlSi7O22)(OH,F,Cl)2
O Pyroxene GroupADSi2O6
FFluorine
F FluoriteCaF2
F Hornblende Root Name Group◻Ca2(Z42+Z3+)(AlSi7O22)(OH,F,Cl)2
MgMagnesium
Mg AnkeriteCa(Fe2+,Mg)(CO3)2
AlAluminium
Al Hornblende Root Name Group◻Ca2(Z42+Z3+)(AlSi7O22)(OH,F,Cl)2
SiSilicon
Si QuartzSiO2
Si Hornblende Root Name Group◻Ca2(Z42+Z3+)(AlSi7O22)(OH,F,Cl)2
Si Pyroxene GroupADSi2O6
SSulfur
S ArsenopyriteFeAsS
S ArgyroditeAg8GeS6
S BorniteCu5FeS4
S ChalcopyriteCuFeS2
S CovelliteCuS
S EnargiteCu3AsS4
S GalenaPbS
S MarcasiteFeS2
S MolybdeniteMoS2
S ProustiteAg3AsS3
S PyrargyriteAg3SbS3
S PyriteFeS2
S PyrrhotiteFe1-xS
S SphaleriteZnS
S StanniteCu2FeSnS4
S StephaniteAg5SbS4
S SternbergiteAgFe2S3
S Tetrahedrite SubgroupCu6(Cu4C22+)Sb4S12S
ClChlorine
Cl Hornblende Root Name Group◻Ca2(Z42+Z3+)(AlSi7O22)(OH,F,Cl)2
CaCalcium
Ca AnkeriteCa(Fe2+,Mg)(CO3)2
Ca CalciteCaCO3
Ca FluoriteCaF2
Ca ScheeliteCa(WO4)
Ca Hornblende Root Name Group◻Ca2(Z42+Z3+)(AlSi7O22)(OH,F,Cl)2
FeIron
Fe AnkeriteCa(Fe2+,Mg)(CO3)2
Fe ArsenopyriteFeAsS
Fe BorniteCu5FeS4
Fe ChalcopyriteCuFeS2
Fe MarcasiteFeS2
Fe PyriteFeS2
Fe PyrrhotiteFe1-xS
Fe StanniteCu2FeSnS4
Fe SternbergiteAgFe2S3
CuCopper
Cu BorniteCu5FeS4
Cu ChalcopyriteCuFeS2
Cu CovelliteCuS
Cu EnargiteCu3AsS4
Cu StanniteCu2FeSnS4
Cu Tetrahedrite SubgroupCu6(Cu4C22+)Sb4S12S
ZnZinc
Zn SphaleriteZnS
GeGermanium
Ge ArgyroditeAg8GeS6
AsArsenic
As ArsenopyriteFeAsS
As EnargiteCu3AsS4
As ProustiteAg3AsS3
MoMolybdenum
Mo MolybdeniteMoS2
AgSilver
Ag ArgyroditeAg8GeS6
Ag ProustiteAg3AsS3
Ag PyrargyriteAg3SbS3
Ag Native SilverAg
Ag StephaniteAg5SbS4
Ag SternbergiteAgFe2S3
SnTin
Sn CassiteriteSnO2
Sn StanniteCu2FeSnS4
SbAntimony
Sb PyrargyriteAg3SbS3
Sb StephaniteAg5SbS4
Sb Tetrahedrite SubgroupCu6(Cu4C22+)Sb4S12S
WTungsten
W ScheeliteCa(WO4)
AuGold
Au Native GoldAu
PbLead
Pb GalenaPbS

Other Databases

Link to British Columbia Minfile:104N 011

Other Regions, Features and Areas containing this locality

North AmericaContinent
North America PlateTectonic Plate

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

 
and/or  
Mindat.org® is an outreach project of the Hudson Institute of Mineralogy, a 501(c)(3) not-for-profit organization. Mindat® and mindat.org® are registered trademarks of the Hudson Institute of Mineralogy.
Copyright © mindat.org and the Hudson Institute of Mineralogy 1993-2026, except where stated. Most political location boundaries are © OpenStreetMap contributors. Mindat.org relies on the contributions of thousands of members and supporters. Founded in 2000 by Jolyon Ralph and Ida Chau.
Content on this site may not be used to train, fine-tune, or otherwise develop artificial intelligence or machine learning models without prior written permission - see our Terms & Conditions.
To cite: Ralph, J., Von Bargen, D., Martynov, P., Zhang, J., Que, X., Prabhu, A., Morrison, S. M., Li, W., Chen, W., & Ma, X. (2025). Mindat.org: The open access mineralogy database to accelerate data-intensive geoscience research. American Mineralogist, 110(6), 833–844. doi:10.2138/am-2024-9486.
Privacy Policy - Terms & Conditions - Contact Us / DMCA issues - Report a bug/vulnerability Current server date and time: September 6, 2026 10:00:17 Page updated: August 9, 2025 00:02:23
Go to top of page