Ice crystals growing on K-feldspar (microcline) have preferential orientation dictated by feldspar lattice structure
Abstract:
Here, we report the following general features of ice nucleation and growth observed in these experiments:
- Nucleation of ice always starts before the water saturation is reached.
- Ice was preferentially nucleating on surface defects (steps, cracks, and pits) or on the debris particles scattered over the surface of feldspar crystal.
- Ice crystals grown via deposition at temperatures above -30°C on any of the feldspar crystal faces have shown the same directional and rotational orientation, with c-axis of ice aligned with the c-axis of microcline unit cell. Below -35°C no preferential orientation has been observed whatsoever.
- The majority of observed ice crystals exhibit the evaporation groove at the waist of hexagonal prism, indicting the presence of lattice dislocations in the crystal nucleation plane.
We discuss a possible mechanism of crystal lattice alignment by considering layer of ordered water on the surface of feldspar crystal forming prior to ice nucleation. Using density functional theory we show how the mineral surface interacts with water, particularly addressing the interaction of surface cations and hydroxyl groups with a water overlayer. We argue that the misalignment of the 001 lattice planes for microcline and ice (inherently following from the alignment of their c-axis) should favor the stacking disorder of ice lattice in the nucleation plane, the feature we observe as an “evaporation groove” in the majority of the aligned ice crystals. Finally, we discuss the implications of the observed phenomenon for the understanding of ice nucleation mechanism on the atmospheric mineral dust particles.
