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Dissolution rates of amorphous Al- and Fe-phosphates and their relevance to phosphate mobility on Mars

机译:无定形铝和铁磷酸盐的溶解速率及其与火星上磷酸盐迁移率的关系

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Phosphate is an essential nutrient for life on Earth, and therefore if life exists or ever existed on Mars it may have required phosphate. Amorphous Al- and Fe-phosphates rapidly precipitate from acidic solutions and amorphous Al-phosphates likely control phosphate concentrations in some natural waters on Earth. The amorphous fraction of martian soils has also been shown to be enriched in P, and amorphous phosphates are therefore also likely important in the phosphate cycle on Mars. Despite this importance, however, few dissolution rates exist for amorphous Al- and Fe-phosphates. In this study, dissolution rates of amorphous Al- and Fe-phosphates were measured in flow-through reactors from steady state concentrations of Al, Fe, and P. A pH-dependent rate law, log R = log k – npH was determined from the dissolution rates, where R is the dissolution rate, k is the intrinsic rate constant, and n is the reaction order with respect to H+. For amorphous Al-phosphate, log k = –6.539 ± 1.529 and n = 2.391 ± 0.493. For amorphous Fe-phosphate, log k = –13.031 ± 0.558 and n = 1.376 ± 0.221. The amorphous Al-phosphate dissolves stoichiometrically under all experimental conditions measured, and the amorphous Fe-phosphate dissolves non-stoichiometrically, approaching stoichiometric dissolution as pH decreases, due potentially to Fe oxyhydroxides precipitating and armoring grain surfaces. Perhaps due to these effects, amorphous Al-phosphate dissolution rates are approximately three orders of magnitude faster than the amorphous Fe-phosphate dissolution rates measured under these experimental conditions. Amorphous Al-phosphate dissolution rates measured in this study are also faster than published dissolution rates for the crystalline Al-phosphate variscite. The rapid dissolution rates measured in this study therefore suggest that, if these phases are present on Mars, phosphate would be rapidly released into acidic environments.
机译:磷酸盐是地球上生命必不可少的营养素,因此,如果生命存在或曾经存在于火星上,则可能需要磷酸盐。无定形的铝和铁磷酸盐迅速从酸性溶液中沉淀出来,无定形的铝磷酸盐很可能控制地球上某些自然水中的磷酸盐浓度。还显示出火星土壤的非晶态部分富含P,因此非晶态磷酸盐在火星的磷酸盐循环中也很重要。然而,尽管具有这种重要性,但对于无定形的铝和铁磷酸盐而言,溶解速率却很少。在这项研究中,从流通状态的Al,Fe和P的浓度测量了流通式反应器中无定形的Al和Fe磷酸盐的溶解速率。溶解速率,其中R是溶解速率,k是固有速率常数,n是相对于H +的反应顺序。对于无定形磷酸铝,log k = –6.539±1.529,n = 2.391±0.493。对于无定形磷酸铁,log k = –13.031±0.558,n = 1.376±0.221。在所有测量的实验条件下,无定形磷酸铝以化学计量方式溶解,而无定形磷酸铁(Fe-磷酸盐)以非化学计量方式溶解,随着pH降低,接近化学计量溶解,这可能是由于羟基氧化铁沉淀和铠装了晶粒表面所致。也许由于这些作用,非晶态磷酸铝的溶解速率比在这些实验条件下测得的非晶态磷酸铁的溶解速率快大约三个数量级。在这项研究中测得的非晶态磷酸铝溶解速率也快于公布的结晶态磷酸铝水滑石的溶解速率。因此,这项研究中测得的快速溶解速率表明,如果这些相存在于火星上,磷酸盐将迅速释放到酸性环境中。

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