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首页> 外文期刊>Geochimica et Cosmochimica Acta: Journal of the Geochemical Society and the Meteoritical Society >Transition elements in water-bearing silicate glasses/melts. Part II. Ni in water-bearing glasses
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Transition elements in water-bearing silicate glasses/melts. Part II. Ni in water-bearing glasses

机译:含水硅酸盐玻璃/熔体中的过渡元素。第二部分含水玻璃中的镍

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摘要

The local coordination environment around Ni(II) in a series of sodium trisilicate (NS3) and albitic (ALB) glasses has been evaluated by using high-resolution XANES and anharmonic EXAFS spectroscopies. The glasses contain similar to 1000 to 4000 ppm of Ni and from 0 to 8.1 wt.% water. They were synthesized at pressures between 2.2 and 5 kbars and temperatures between 1050 and 1350 K. The bulk: glasses were characterized by using X-ray diffraction, transmission electron microscopy. Raman, and ultraviolet-Vis-NIR spectroscopies. Both hydrous NS3 and ALE glasses show dominant amounts of Ni(II) in relatively regular 6-coordinated environments, in contrast with their anhydrous counterparts, where 5-coordinated Ni dominates. There are also significant differences in the average medium-range environment (2-3.5 Angstrom) around Ni between the anhydrous and hydrous glasses. In the ALE glasses, the presence of water in amounts >2 wt.% induces the formation of nanocrystallites, with an average diameter of similar to 40 Angstrom and an atomic arrangement similar to that of nepouite ((Ni3Si2O5)-Ni-[6](OH)(4)) or Ni-talc ((Ni3Si4O10)-Ni-[6](OH)(2)) or a related hydrous No-silicate. The presence of Ni-bearing nanocrystallites is thought to be due to the relatively slow quench rate of the high-temperature-high-pressure synthesis apparatus used. These nanophases are difficult to detect by using conventional characterization methods and can cause misleading interpretations of the glass structure if not detected. In contrast, there is no evidence for Ni-rich, nanocrystalline domains in NS3 glasses containing high water contents (up to 8.2 wt.%); instead, two to three Si second neighbors are observed around Ni in all NS3 glasses (and in ALE glasses with water contents <4 wt.%). The bonding of Ni to oxygens in the tetrahedral framework is inconsistent with the presence of large amounts of Ni(H2O)(6)(2+) complexes in these glasses However, Ni(II) may form Ni(OH)(n) O-6-n((4+n)-) (n similar to 6) complexes in hydrous glasses. Our results for Ni combined with results from other studies of 3-d divalent transition metal cations in hydrous silicate glasses suggest that water in silicate melts helps these cations form their preferred coordination environments [6-coordinated for Mn(II), Fe(II), and Ni(II)]. Ni(II) may occur in natural hydrous silicate melts dominantly in 6-coordinated environments. rather than dominantly in 4-coordinated environments, as in anhydrous melts and supercritical aqueous fluids, explaining the compatible behavior of Ni in magmas. However, in situ experiments are required to test this suggestion. Copyright (C) 2001 Elsevier Science Ltd. [References: 58]
机译:通过使用高分辨率XANES和非调和EXAFS光谱学评估了一系列三硅酸钠(NS3)和低碳(ALB)玻璃中Ni(II)周围的局部配位环境。该玻璃含有相似的1000至4000ppm的Ni和0至8.1重量%的水。它们是在2.2至5 kbars的压力和1050至1350 K的温度下合成的。体积:玻璃通过X射线衍射,透射电子显微镜表征。拉曼光谱和紫外-可见-近红外光谱。含水的NS3和ALE玻璃在相对规则的6配位环境中均显示出大量的Ni(II),与之相比,无水玻璃则以5配位的Ni为主导。无水玻璃和含水玻璃之间在Ni周围的平均中程环境(2-3.5埃)之间也存在显着差异。在ALE玻璃中,水的含量> 2 wt。%会诱导形成纳米微晶,其平均直径类似于40埃,原子排列类似于锂辉石((Ni3Si2O5)-Ni- [6] (OH)(4))或Ni-滑石粉((Ni3Si4O10)-Ni- [6](OH)(2))或相关的含水非硅酸盐。认为含Ni的纳米晶体的存在是由于所使用的高温高压合成装置的相对较慢的淬灭速率。这些纳米相很难通过常规表征方法检测出来,并且如果不检测到,可能会引起玻璃结构的误导性解释。相比之下,没有证据表明NS3玻璃中的Ni含量高(含水量高达8.2 wt。%),纳米晶域丰富;取而代之的是,在所有NS3玻璃中(以及水含量<4 wt。%的ALE玻璃中),在Ni周围观察到2至3个Si第二邻居。 Ni与四面体框架中的氧的键合与这些玻璃中大量Ni(H2O)(6)(2+)配合物的存在不一致,但是Ni(II)可能形成Ni(OH)(n)O含水玻璃中的-6-n((4 + n)-)(n与6相似)复合物。我们对Ni的结果与对含水硅酸盐玻璃中3-d二价过渡金属阳离子的其他研究结果的结合表明,硅酸盐熔体中的水有助于这些阳离子形成其优选的配位环境[对于Mn(II),Fe(II)而言是6配位,和Ni(II)]。 Ni(II)可能在六配位环境中主要存在于天然含水硅酸盐熔体中。而不是在四配位环境中占主导地位,例如在无水熔体和超临界水性流体中,这说明了镍在岩浆中的相容行为。但是,需要原位实验来测试该建议。版权所有(C)2001 Elsevier Science Ltd. [引用:58]

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