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Clathrate Hydrate Crystal Growth at the Seawater/Hydrophobic−Guest−Liquid Interface

Riki Sakemoto, Hiroki Sakamoto, Kuniaki Shiraiwa, Ryo Ohmura, Tsutomu Uchida

Open publisher page 93 citations

Abstract

This paper reports visual observations of clathrate hydrate crystals growth at the interface of water/seawater and a guest substance to reveal the effect of salts on the crystal growth. Cyclopentane was used as the guest substance to form a structure II hydrate. Cyclopentane hydrate crystals grew along the interface of cyclopentane and seawater to form a polycrystalline layer covering the entire interface. We visually analyzed the individual crystals and classified the morphology of the hydrate crystals according to the subcooling (Δ T sub ) from the cyclopentane hydrate equilibrium temperature of atmospheric pressure. The results showed that the morphology of the individual cyclopentane hydrate crystals in water and seawater are qualitatively similar at similar subcooling. As a general trend, for Δ T sub < 2.0 K, the shape of the hydrate crystals is typically polygons, at Δ T sub = 2.0−4.5 K, the shape changes to small polygons or slender polygons, and for Δ T sub > 4.5 K, the crystals have triangular or swordlike shape.

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What this paper is about

This paper reports visual observations of clathrate hydrate crystals growth at the interface of water/seawater and a guest substance to reveal the effect of salts on the crystal growth. Cyclopentane was used as the guest substance to form a structure II hydrate. Cyclopentane hydrate crystals grew along the interface of cyclopentane and seawater to form a polycrystalline layer covering the entire interface. We visually analyzed the individual crystals and classified the morphology of the hydrate crystals according to the subcooling (Δ T sub ) from the cyclopentane hydrate equilibrium temperature of atmospheric pressure. The results showed that the morphology of the individual cyclopentane hydrate crystals in water and seawater are qualitatively similar at similar subcooling. As a general trend, for Δ T sub < 2.0 K, the shape of the hydrate crystals is typically polygons, at Δ T sub = 2.0−4.5 K, the shape changes to small polygons or slender polygons, and for Δ T sub > 4.5 K, the crystals have triangular or swordlike shape.

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Available abstract

This paper reports visual observations of clathrate hydrate crystals growth at the interface of water/seawater and a guest substance to reveal the effect of salts on the crystal growth. Cyclopentane was used as the guest substance to form a structure II hydrate. Cyclopentane hydrate crystals grew along the interface of cyclopentane and seawater to form a polycrystalline layer covering the entire interface. We visually analyzed the individual crystals and classified the morphology of the hydrate crystals according to the subcooling (Δ T sub ) from the cyclopentane hydrate equilibrium temperature of atmospheric pressure. The results showed that the morphology of the individual cyclopentane hydrate crystals in water and seawater are qualitatively similar at similar subcooling. As a general trend, for Δ T sub < 2.0 K, the shape of the hydrate crystals is typically polygons, at Δ T sub = 2.0−4.5 K, the shape changes to small polygons or slender polygons, and for Δ T sub > 4.5 K, the crystals have triangular or swordlike shape.

Key concepts: Cyclopentane, Subcooling, Hydrate, Clathrate hydrate, Seawater, Chemistry, Crystallography, Crystal growth

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