首页> 外文会议>University of Bristol;EMAS Regional Workshop: Microbeam Analysis in the Earth Sciences;Mineralogical Society of Great Britain and Ireland;European Microbeam Analysis Society >ESTIMATING SUB-SURFACE OXIDATION PROCESSES THROUGH THE ABUNDANCE OF SUPERPARAMAGNETIC GRAINS IN A CONTINENTAL OPHIOLITE COMPLEX: A MULTISCALE CORRELATIVE STUDY
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ESTIMATING SUB-SURFACE OXIDATION PROCESSES THROUGH THE ABUNDANCE OF SUPERPARAMAGNETIC GRAINS IN A CONTINENTAL OPHIOLITE COMPLEX: A MULTISCALE CORRELATIVE STUDY

机译:通过连续蛇纹石复合物中超顺磁性颗粒的丰度估算亚表面氧化过程:多尺度相关研究

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The hydration of mantle rocks provides one of essential mechanisms for allowing habitability inthe deep biosphere. In particular, the low temperature serpentinisation process results in a seriesof mineralogical transformations, which produce magnetite and hydrogen at each step of thebreakdown sequence. Microorganisms in the deep subsurface influence many of these stepsand can be observed in seasonal fluxes in biological, and outcrop scale electrical conductivityvariations at the Cost Range Ophiolite Microbial Observatory . This paper will focus onconnecting seasonal observations with serpentinite breakdown products observed in a correlativestudy of thin section samples taken from drill cores at the observation site. We conductedBackscattered electron (BSE) mapping (Figs. 1a and 1c), quantitative evaluation of minerals byscanning electron microscopy (QEMSCAN) (Fig. 1b), multiscale EDS phase mapping,FIB-nanotomography (Fig. 1d), and STEM-EELS to identify and quantify the superparamagneticminerals that contribute to the measured magnetic susceptibility signals in our rock samples. Largearea BSE and iron maps generated through the QEMSCAN technique identified several regions ofiron enrichment not associated with olivine (Figs. 1a and 1b). Using the FIB, cross-sectioningthrough the region highlighted in Fig. 1c, reveals a complex breakdown microstructure as theserpentine continues to breakdown into chlorite and talc (Fig. 1d). On-going investigations areunderway to better localise regions in this breakdown texture, which are rich in superparamagneticmagnetite grains (<100 nm major axis). This correlative approach will improve the estimation ofbiogenic hydrogen production based on the abundance of sub-100 nm magnetite particles.Measuring magnetite production in this layer develops a new quantitative tool for the accurateestimation of bulk deep-biomass hosted by in situ serpentinisation processes.
机译:地幔岩石的水化提供了允许居住的基本机制之一。 深层的生物圈。特别地,低温蛇形化过程导致一系列 矿物转化的过程,在每个步骤中都会产生磁铁矿和氢气 故障顺序。深层地下微生物会影响许多这些步骤 并可以在生物通量和露头电导率的季节性通量中观察到 在成本范围内的变化Ophiolite微生物天文台。本文将重点关注 将季节性观测结果与相关观测到的蛇纹岩分解产物联系起来 观察现场从钻芯取的薄切片样品的研究。我们进行了 背散射电子(BSE)映射(图1a和1c),通过矿物定量评估 扫描电子显微镜(QEMSCAN)(图1b),多尺度E​​DS相图, FIB纳米断层扫描(图1d)和STEM-EELS识别和量化超顺磁性 有助于我们的岩石样品中测得的磁化率信号的矿物。大 通过QEMSCAN技术生成的BSE区域和铁图确定了多个区域 与橄榄石无关的铁富集(图1a和1b)。使用FIB横截面 通过图1c中突出显示的区域,揭示了一个复杂的击穿微观结构,因为 蛇纹石继续分解为亚氯酸盐和滑石(图1d)。正在进行的调查是 正在努力更好地定位这种击穿纹理中的区域,这些区域富含超顺磁性 磁铁矿晶粒(<100 nm长轴)。这种相关方法将改善对 基于100 nm以下磁铁矿颗粒的丰度产生生物成氢。 测量这一层中磁铁矿的产量,开发了一种新的定量工具,可准确 对原位蛇形化过程产生的大量深部生物量的估计。

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