Structural morphology of alkali feldspars and zircon and oriented intergrowths causing asterism in gemstones
Publication date
1990-12-10
Authors
Woensdregt, C.F.
Editors
Advisors
Supervisors
DOI
Document Type
Dissertation
Metadata
Show full item recordCollections
License
Abstract
Crystalline material grown in aqueous solutions or from vapour phase is often bounded
by plane crystal faces. The surface configuration of such faces, that is controlled by the
internal crystal structure, can be derived by the Hartman-Perdok theory with atomic precision.
The crystal faces can be classified into three different categories. The most
important faces with the lowest growth rates are the F faces, which are parallel to at least
two non-collinear Periodic Bond Chains (PBCs). A PBC is an uninterrupted chain of
strong bonds formed during the crystallization. As the strong bond is a relatively short
bond within the first coordination sphere the number of PBCs and F faces is limited. The other two categories are the S and K faces, which should not be present on the growth form. Conclusion The influence of the crystal structure on crystal growth processes is clearly demonstrated
by the investigations on zircon and potassium feldspars. The crystal structure determines
the surface structure of the crystalline interface of which the atomic configuration controls
the growth and the incorporation of impurities. Internal interfaces caused by the
oriented intergrowth of host and guest phases not only reflect the (re)crystallization
processes, but can also produce physical phenomena such as chatoyance and asterism
Keywords
feldspar, zircon, silicate minerals, crystal growth