Inorganic Magnetite Precipitation at 25 °C: A Low-Cost Inorganic Coprecipitation Method

Author:

Perez-Gonzalez T.,Rodriguez-Navarro A.,Jimenez-Lopez C.

Publisher

Springer Science and Business Media LLC

Subject

Condensed Matter Physics,Electronic, Optical and Magnetic Materials

Reference49 articles.

1. Thomas-Keprta, K.L., Bazylinski, D.A., Kirschvink, J.L., Clemett, S.J., McKay, D.S., Wentworth, S.J., Vali, H., Gibson, E.K. Jr., Romanek, C.S.: Elongated prismatic magnetite crystals in ALH84001 carbonate globules: potential Martian magnetofossils. Geochim. Cosmochim. Acta 64, 4049–4081 (2000). doi: 10.1016/S0016-7037(00)00481-6

2. Mozley, P.S., Carothers, W.W.: Elemental and isotopic composition of siderite in the Kupanuk Formation, Alaska: Effect of microbial activity and water/sediment interaction on early pore-water chemistry. J. Sediment. Petrol. 64, 681–692 (1992)

3. Ptacek, C.J.: Experimental determination of siderite solubility in high ionic-strength aqueous solutions. Ph.D. Thesis, Univ. Waterloo, Waterloo, Ontario, Canada (1992)

4. Rajan, S., Mackenzie, F.T., Glenn, C.R.: A thermodynamic model for water column precipitation of siderite in the Plio-Pleistocene Black Sea. Am. J. Sci. 296, 506–548 (1996)

5. Kelts, K.: Environments of deposition of lacustrine petroleum source rocks: an introduction. In Fleet, A.J., Kelts, K., Talbot, M.R. (eds.) Lacustrine Petroleum Source Rocks, vol. 40, pp. 3–26. Geol. Soc. Spec. Publ., London (1988)

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