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Unprecedented ultra-high hydrogen gas sensitivity In undoped titania nanotubes

机译:在未掺杂的二氧化钛纳米管中前所未有的超高氢气敏感性

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A highly ordered array of micron-length undoped titania nanotubes exhibits an unprecedented variation in electrical resistance of about 8.7 orders of magnitude (50 000 000 000 percent), at room temperature, when exposed to alternating atmospheres of nitrogen containing 1000 ppm hydrogen and air. This represents the largest known change in electrical properties of any material, to any gas, at any temperature. The nanotube arrays were fabricated using anodic oxidation of titanium foil in a pH 4.0 electrolyte containing potassium fluoride, sodium hydrogen sulfate monohydrate and sodium citrate tribasic dihydrate. The dramatic change in resistance is believed to be due to the highly active surface states on the nanoscale walls of the tubes, high surface area of the nanotube architecture, and the well-ordered geometry allowing for hydrogen-sensitive tube-to-tube electrical connections.
机译:当暴露于包含1000 ppm氢和空气的交替氮气氛下时,在室温下,微米级未掺杂的高度有序的未掺杂二氧化钛纳米管阵列表现出前所未有的电阻变化,约为8.7个数量级(5,000亿%)。这代表了在任何温度下,任何材料对任何气体的电性能的最大已知变化。在包含氟化钾,一水合硫酸氢钠和三水合柠檬酸钠的pH 4.0电解质中,通过钛箔的阳极氧化制备纳米管阵列。电阻的急剧变化被认为是由于管的纳米级壁上的高活性表面状态,纳米管结构的高表面积以及允许氢敏感的管对管电连接的井井有条的几何形状。

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