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Non-stoichiometry, Electrowetting and Contact Interaction of Zirconia, Titania or Hafnia with Metal Melts

机译:氧化锆,二氧化钛或Hafnia的非化学计量,电润湿和接触相互作用,金属熔体

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Transition metal oxides, in particular titania, zirconia and hafnia, due to high anion mobility, can lose oxygen with the formation of non-stoichiometric phases and also passage of electric current at high temperature. This influences the properties of the materials, in particular the contact interaction with metals. This paper studies the wetting of zirconia, hafnia and titania with inert metal melts (Cu, Ni, Pt, Cu-Ga, Cu-Ge, etc.) in conditions where high non-stoichiometry of oxides was provided and where current passed through the interfaces. Sessile drop wetting in vacuum, microstructure analysis and x-ray studies were conducted. In wetting experiments with high non-stoichiometry, oxide samples contacted at the same time with active metal melts (Ti, Cu-Ti, Ni-Ti) to provide the oxygen deficit in substrates and with inert metal melts (Cu, Ni, Pt, Cu-Ga, Cu-Ge, etc.). In experiments with current, metal drops were situated between ceramic or ceramic and metal plates connected to current leads. When inert and active metals contacted the ceramic simultaneously, inert melts wet the zirconia and the hafnia but not the titania. This effect was explained by dissolution of surplus zirconium and hafnium in melts. Titania in contact with active metal was reduced to a lower oxide, and permanent oxygen removal from the sample volume was not provided. Dissolution of zirconium was confirmed for the nickel/zirconia/Ni-Ti samples through microstructure investigation and thermodynamic calculations. When a positive electrode was connected to a ceramic, wetting significantly improves for zirconia, titania and hafnia. It was also explained by oxygen depletion under the current and subsequent dissolution of surplus titanium, zirconium or hafnium in the melt. The results obtained were used to braze zirconia ceramics. Thus the non-stoichiometry caused by high anion mobility was found to influence the titania-, zirconia- and hafnia-to-metal interaction.
机译:过渡金属氧化物,特别是二氧化钛,氧化锆和铪,由于高阴离子迁移率,可以使氧气损失具有非化学计量相的氧气以及在高温下的电流通过电流。这影响了材料的性质,特别是与金属的接触相互作用。本文在提供高非化学计量的条件下,在提供氧化物的高非化学计量的条件下,研究氧化锆,铪和二氧化钛的润湿,惰性金属熔体(Cu,Ni,Pt,Cu-Ga,Cu-Ge等),其中电流通过接口。进行真空,微观结构分析和X射线研究的术式液滴润湿。在具有高非化学计量的润湿实验中,同时与活性金属熔体(Ti,Cu-Ti,Ni-Ti)相同接触的氧化物样品,以在衬底和惰性金属熔体中提供氧气缺陷(Cu,Ni,Pt, Cu-Ga,Cu-ge等)。在具有电流的实验中,金属滴位于连接到电流引线的陶瓷或陶瓷和金属板之间。当惰性和活性金属同时接触陶瓷时,惰性熔化氧化锆和哈夫尼亚,但不是二氧化钛。通过溶解溶解熔融溶解和熔化铪的溶解来解释这种效果。与活性金属接触的二氧化钛降低到较低的氧化物,并未提供从样品体积的永久性去除。通过微观结构研究和热力学计算证实了镍/氧化锆/ Ni-Ti样品的溶解。当正极连接到陶瓷时,润湿性显着改善氧化锆,二氧化钛和Hafnia。还通过氧气耗尽和随后的熔融钛,锆或铪中的氧气耗尽来解释。获得的结果用于钎焊氧化锆陶瓷。因此,发现由高阴离子迁移率引起的非化学计量影响二氧化钛,氧化锆和铪 - 金属相互作用。

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