Abstract
To survive in deep subsurface environments, lithotrophic microbial communities require a sustainable energy source such as hydrogen. Though H 2 can be produced when water reacts with fresh mineral surfaces and oxidizes ferrous iron, this reaction is unreliable since it depends upon the exposure of fresh rock surfaces via the episodic opening of cracks and fissures. A more reliable and potentially more voluminous H 2 source exists in nominally anhydrous minerals of igneous and metamorphic rocks. Our experimental results indicate that H 2 molecules can be derived from small amounts of H 2O dissolved in minerals in the form of hydroxyl, OH - or O 3Si-OH, whenever such minerals crystallized in an H 2O-laden environment. Two types of experiments were conducted. Single crystal fracture experiments indicated that hydroxyl pairs undergo an in situ redox conversion to H 2 molecules plus peroxy links, O 3Si/ OOSiO 3. While the peroxy links become part of the mineral structure, the H 2 molecules diffused out of the freshly fractured mineral surfaces. If such a mechanism occurred in natural settings, the entire rock column would become a volume source of H 2. Crushing experiments to facilitate the outdiffusion of H 2 were conducted with common crustal igneous rocks such as granite, andesite, and labradorite. At least 70 nmol of H 2/g diffused out of coarsely crushed andesite, equivalent at standard pressure and temperature to 5,000 cm 3 of H 2/m 3 of rock. In the water-saturated, biologically relevant upper portion of the rock column, the diffusion of H 2 out of the minerals will be buffered by H 2 saturation of the intergranular water film. © Mary Ann Liebert, Inc.
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Freund, F., Dickinson, J. T., & Cash, M. (2002). Hydrogen in rocks: An energy source for deep microbial communities. Astrobiology, 2(1), 83–92. https://doi.org/10.1089/153110702753621367
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