Spodumene, a member of the pyroxene group, is lithium aluminiumsilicate LiAlSi2O6
and forms highly characteristic flattened and striatedprismatic transparent
crystals of the monoclinic system
with good cleavagesin two
directions intersecting nearly at right angles and a notably brittletendency.Thehardnessis6.5–7andtheSG3.18.TheRIforthealpha,betaand gamma rays is 1.648–1.663, 1.655–1.669
and 1.662–1.679 respectivelywithbiaxialpositiveDR0.014–0.027.Crystalsarestronglypleochroicwithlilac, green or yellow in one direction
and colourless in the other. Thevarietiesincludeayellowtopalegreenspodumenewithnovarietalname,thelilac-pinkkunziteandaveryrarechrome-greenhiddenite.
Kunziteshowsnousefulabsorptioninthevisiblebutthechrome-greenhiddenite shows a characteristic chromium spectrum with the
customarystrongdoubletinthedeepredat690.5and686nmandweakerlinesat 669 and 646 nm. A
broad absorption band has its centre near 620 nmbut no Cr lines are visible in the blue. The iron band is strong
andwell-definedat437.5
nmandisaccompaniedbyaweakerbandat433
nm. A narrow line at 505 nm is reported from a yellow spodumenefrom Myanmar. The band at 437.5 nm is seen
in a number of pyroxenes,includingjadeiteandisduetoiron.
Kuzite (pink)
Luminescence
Under LWUV kunzite glows golden-pink or orange with a weaker effectunder SW; it shows a very strong response
to X-rays with a very strongorange
with persistent phosphorescence. After this irradiation the speci-menmayhavechangedfromlilac-pinktobluishgreen.Keptawayfrom
fluorescence in spodumene
strong light sources this induced colour will be maintained. If such aspecimenisexposedtostrongsunlightforsomehoursorifitisheatedtoaround200 °Cthecolourwilldischargewithemissionoforangeluminescence. Yellow-green spodumene may
give a weak orange-yellowunderLWUV;amuchweakerthoughsimilareffectisseenunderSW.
Yellow-green spodumene gives a fairly strong glow under
X-rays butwithnophosphorescenceorchangeofcolour.
A brownish orange spodumene was found to have been
irradiated,primarily by the isotope
scandium-46. A Geiger counter should be usedroutinely on spodumene of citrine-like colour. Gamma ray spectroscopyalsodetectedradio-activeisotopes.Wearingisnotrecommended.
Occurrence
Spodumene is a common constituent of lithium-rich granite pegmatites.Fine kunzite is found in southern
California, in particular at the WhiteQueenmine,Hiriarthill,SanDiegoCounty,andelsewhereinthearea.ItisalsofoundinmanyBrazilianpegmatites,particularlyatUrupuca,atLavradoeMario,CorregodoUrucum,Galileiaandasthick,palepinkandpalegreencrystalsatResplendor.ThepegmatitesofKunar,LaghamandNuristan, Afghanistan, provide
good-quality crystals. Yellow-green spo-dumene
is found in the Brazilian pegmatites and also at locations inAfghanistan. In the early days of its
appearance yellow spodumene wasthought
to be yellow chrysoberyl. Various colours of spodumene havebeen
found in the pegmatites of Madagascar, in
particular Anjanabonoina,Mt
Bity and Tilapa. Hiddenite spodumene has been found only at StonyPoint,
Alexander County, North Carolina. The variety was identified in thelate
nineteenth century. Spodumene has been reported from the MogokareaofMyanmar.Abluespodumeneweighing35caratshasbeenreported.ThestonehadRIinthespodumenerange.
NoteontheCuttingofKunzite
Owingtothestrongcleavage,brittlenessandheatsensitivity,spodumeneisadifficultstonetofacet.Further,owingtothethinnatureofsomeofthecrystalsitisnotpossibletocutwell-colouredstones,sincetogetstonesofgoodcolouradvantageshouldbetakenofthestrongestpleochroiccolour.Thedeepestcolourisseenapproximatelyparalleltothelengthofthecrys-tal, so for the best result the stones
should be cut with the table facet atrightanglestothisdirection.Thisis,ofcourse,moreimportantinthecaseofkunzite, whichis usuallycut very
deepin orderto enhance thecolour.
Spodumene
Some kunzites have a tendency to fade on exposure to strong sunlight.Someyellowishbrownspodumenesturnpurpleafterheattreatment.
Simulation
Kunzite is simulated by synthetic pink spinel and by a suitably colouredglass, but distinction is easy as both of
these stones are singly refractive,whereasinkunzitetheDRisstrongenoughforthedoublingoftheoppos-ing facet edges to be seen with a hand
lens in appropriate directions.Further,glassandspinelarenotdichroic.Whatmaybeamoreconvincingsimulator of kunzite is a bluish pink
amethyst, but even here, apart fromthe
differences in the RI and SG, the lustre of the amethyst is not nearlythatofkunzite.
Kunzite Mining at the Oceanview Mine, Part 2 by GIA
Note: Jargoon or jargon is a name applied by gemologists to those zircons which are fine enough to be cut as gemstones, but are not of the red color which characterizes the hyacinth or jacinth.
While zircon in fashioned form can be found in a wide range of coloursthe crystals are usually reddish brown and
heat treatment is needed toproduce
the colourless, golden yellow and bright blue colours most seenin jewellery. Other colours, often very
pleasing, might be called fancyzircons
as the range is considerable. We should understand from the firstthat some zircons are much older than
others and, like older people,behave
in different ways. Over time some zircons have suffered a break-down of their crystal lattice to the
extent that in extreme cases they are toall
intents and purposes amorphous. They show little or no birefringenceand their physical properties are
different from those of other zircons.They
are ‘low’ zircons and come virtually exclusively from the gem grav-els of Sri Lanka. Zircons from
elsewhere, with their crystal lattice intact,are ‘high’ zircons. The name metamict (first used by Brögger in 1893) isapplied to low zircons, which approach a
glassy amorphous state, arealmost
always green and can be radioactive though gem specimens donotnormallyshowthispropertytoanysignificantextent.
Theprogressivedisintegrationofthecrystallatticeinmetamictzircon arises from the presence of decaying nuclei of uranium and thorium, theprocess emitting alpha particles. With
each emission the nucleus recoils,causing
the displacement of lattice atoms. This process is described inDeer,HowieandZussman,Rock-FormingMinerals,secondedition,vol.1A,Orthosilicates,1982. Zircon is zirconium silicate ZrSiO4 and
forms prismatic crystals of thetetragonal
system with square cross-sections and is sometimes attract-ively terminated by pyramids; large
reddish brown crystals from Nigeriacan
be especially attractive. Geniculate twins are also found. Crystalsshowamarkedlyoilylustre.Mostgemzirconoccursaspebblesingem gravels. Zircon is often brittle and faceted stones have traditionally
beenkept separate from one another
so that their facets do not become ‘paperworn’.
Thai dealers for years used ‘zircon twists’ in which several stoneswerekeptinscrewsofblackpaper.
The hardness is 7.5 and the SG 4.5–4.7. The RI for the
ordinary andextraordinaryraysis1.925–1.961and1.980–2.015respectivelywithabirefringence of 0.059, uniaxial
positive. Metamict zircon may have SGaround
4 and RI as low as 1.78 with scarcely perceptible birefringence.The dispersion, seen at its best in the
heat-treated colourless materialwhenfaceted,isabout0.039.Propertiestosomeextentidentifythedegree
of metamictization and gem zircons have been classed as high,low and intermediate, the absorption
spectrum often providing a usefulindication
of a specimen’s position on this arbitrary scale. Zircon showsvery weak pleochroism in general though
blue heat-treated stones willgiveablueandnear-colourlessresponse.
In high zircon and particularly those from Myanmar
there is a beauti-ful and
near-diagnostic uranium absorption spectrum with fine thoughstrong lines and narrow bands extending
across the entire width. Thestrongest
band is at 635.5 nm. This phenomenon was first described byChurch,withthespectrumofalmandine,inTheStudent’sGuideandIntellectualObserver,1866.Myanmargreenishbrownspecimensmaycontain at least 40 lines
and bands. Details of the absorption spectra ofgem zircons were collected by B.W. Anderson and C.J. Payne over
manyyears between and after the
Second World War while working at theLondon
Gem Testing Laboratory. Their work was collected by AndersoninMSnotes,copiesofwhichareheldbyGemA
intheirlibraryinLondon. Between 1954 and 1957 the journal The
Gemmologist publishedsome
of these notes and in 1998 R.K. Mitchell edited them for a mono-graphTheSpectroscopeandGemmology,GemStonePress,Woodstock,Vermont and Robert Hale, London; ISBN 071980261X.
In the section onzircon Anderson
& Payne list bands shown by different zircons, makingthe point that some are best seen in the
ordinary or extraordinary rays.Some
showed up best on a photograph taken with a small grating spec-trographusingplatessensitivetothedeepred.Notonlydozirconsshow a variety of absorption bands and
lines corresponding to their lowor
high state; when heated, some specimens show an anomalous spec-trum. To an extent the absorption spectrum
may give some clue to ori-ginasspecimensfromUralla,NewSouthWales,showonlyafewbands,andredspecimensfromsitesinthe
Auvergne,France,haveshown
no absorption in the visible. When zircons from the Indo-Chinaregionareheatedtogivecommercialcolourless,goldenyellowandblue
their absorption spectrum is very weak and may show only thepersistentbandat653.5nm.
Heating these zircons may cause this band to sharpen
and other linesto appear. There are
some rare variations of the low-type absorptionspectrum, one of which shows three broad strong bands in the red
at 691,669 and 653.5 nm, the
centre band being the strongest. Another type,which curiously has been found only in zircons with an RI of 1.82 and anSGof3.98,showsavaguebandat655nmandanotherat520nm.
Doubling of back facets in Zircon
Fluorescence
Some zircons show cathodoluminescence
and thermoluminescence but theresponses are not usually valuable in
gemmological testing. IntermediatetypesmaygiveanorangeincandescenceinaBunsenflame–thoriumhasbeensuggestedasthecause.Neutronirradiationofyellowcrystalscausestheir colour to change
to bright green (the colour of metamict zircon).Subjecting zircon to any form of irradiation may cause them to
discolour.This is especially true
of the colourless and blue specimens whose colourhasbeenarrivedatbyheating.Thoughgemmologistsspeakofcolourfad-ing this is, like so
many other pronouncements, incorrect; dark patchesappearinthestoneandspreadasthetreatmentcontinues.Heatingusually
restores their original appearance though not, it can be imagined untilsomeheart-searchinghastakenplace.
Heating
Boththelowandintermediatezirconswhenheatedtoabout1450°CmayachieveanSGof4.7withhigh-typeRIsandsharperabsorptionlines.HeatingthereddishbrownIndo-Chinesecrystalsgivesblue,colourlessoryellowspecimensaccordingtowhetherornotanoxidiz-ingatmosphereisemployed.Colourlessandsky-bluezirconsneedreducing conditions while
golden yellow colours are achieved in oxi-dizingconditions.Gemzirconisusuallythehightype.
ThebestaccountoftreatmentcanbefoundinNassau,GemstoneEnhancement,secondedition,ButterworthHeinemann,Oxford,1994;ISBN 0750617977. Nassau
reminds readers that many references to themethodsusedinheatingzirconcanbefoundinEppler,DasGeheimnisdesZircons,inGoldschmiedeZeitung51,531(1936)andbyBuckinghamintheJournalofGemmology2,177(1950).
Zircon Treatment the traditional way 2017 - Princess Gemstones
Metamict zircon shows the most characteristic inclusions. Most prom-inent are tension fissures meeting at an
angle of 57˚5 and probably dueto the degeneration process. They echo the
original crystal’s prism anddipyramidal
faces. Also due to isotropization are disc-shaped tensionfissures. Unequal isotropization may give
rise to parallel stripes whichalso
suggest tetragonal form (Figure 7.3). Ilmenite may
be found in frac-tures andsomehealingfissures arereported.
Occurrence
Zircon is unusually common and widely distributed though most gemcrystalsoccurinthegemgravelsofSriLankaandsomearefoundinthe Mogok area of Myanmar and in
Nigeria. The red zircon of Expailly,Auvergne,
France, has already been mentioned. Gem crystals in a varietyof colours and sizes have been found in
the Mud Tank area of the HartsRange, Northern
Territory, Australia. These crystals appear to have under-gonelessstructuraldamagethantheSriLankanmaterial.Finecrystalsarereported from Slyudanka, Irkutsk Oblast, Russia,
and from Seiland Is., AltaFjord, northern Norway; this area has
produced beautiful orange crystalsupto2.5inchesinlength.
The gem zircon locations in South-east Asia include the
Pailin districtofKampucheaandtheChiangMaidistrict,Thailand.Thezircon-producingsitesoverlappoliticalboundariesinmanycasessothatnamescanbehardtolocate.InallcasesmaterialissenttoBangkokforfashioning.
Reddish brown zircon is reported from decomposed alkali
basalts nearJemaalKaduna,Nigeria.Thisisasourceoffinecrystals.
Fashioning
In order to obtain the best optical effect with zircon, the stones are
some-times cut into a modified
brilliant cut which has a second set of pavilionfacets. The octagonal and four-sided trap cuts are now
extensively usedfor specimen zircons
of the blue and golden colours, for some of thegreens and yellows, and also the browns of natural colour. The
naturalcoloured stones are, however,
more usually cut in the mixed-cut style.The
high birefringence can affect the appearance of the finished stone ifcareisnottakenbythelapidary.
A basaltic rock with groups of flower-like radiating
crystals of zirconand xenotime-(Y),
(YPO4), is found in the hill Maru-Yama, just north ofMount Funabuse, Gifu prefecture, Japan.
The rock is locally called kiku-ishi
(chrysanthemum stone). A similar rock is found, usually as boulders,inVancouverIslandofBritishColumbia,Canada.