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Controlling Disorder and Superconductivity in Titanium Oxynitride Nanoribbons with Anion Exchange

机译:通过阴离子交换控制氧氮化钛纳米带的无序和超导

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In recent years, conversion chemical reactions, which are driven by ion diffusion, emerged as an important concept for formation of nanoparticles. Here we demonstrate that the slow anion diffusion in anion exchange reactions can be efficiently used to tune the disorder strength and the related electronic properties of nanoparticles. This paradigm is applied to high-temperature formation of titanium oxynitride nanoribbons, Ti(O,N), transformed from hydrogen titanate nanoribbons in an ammonia atmosphere. The nitrogen content, which determines the chemical disorder through random O/N occupancy and ion vacancies in the Ti(O,N) composition, increases with the reaction time. The presence of disorder has paramount effects on resistivity of Ti(O,N) nanoribbons. Atypically for metals, the resistivity increases with decreasing temperature due to the weak localization effects. From this state, superconductivity develops below considerably or completely suppressed critical temperatures, depending on the disorder strength. Our results thus establish the remarkable versatility of anion exchange for tuning of the electronic properties of Ti(O,N) nanoribbons and suggest that similar strategies may be applied to a vast number of nanostructures.
机译:近年来,由离子扩散驱动的转化化学反应已成为形成纳米颗粒的重要概念。在这里,我们证明了阴离子交换反应中缓慢的阴离子扩散可以有效地用于调节纳米粒子的无序强度和相关的电子性能。该范例适用于在氨气氛中从钛酸氢纳米带转化而来的高温氮化钛纳米带Ti(O,N)的形成。氮含量随反应时间的增加而增加,而氮含量是通过随机O / N占据和Ti(O,N)组合物中离子空位来确定化学无序的。无序的存在对Ti(O,N)纳米带的电阻率具有至关重要的影响。通常对于金属,由于弱的局部效应,电阻率随温度降低而增加。在此状态下,根据无序强度,超导电性会显着低于或完全抑制临界温度。因此,我们的结果确立了阴离子交换在调节Ti(O,N)纳米带的电子性能方面的卓越多功能性,并表明相似的策略可能适用于大量的纳米结构。

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