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Interface modulated currents in periodically proton exchanged Mg doped lithium niobate

机译:周期性质子交换的掺镁铌酸锂中的界面调制电流

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摘要

Conductivity in Mg doped lithium niobate (Mg:LN) plays a key role in the reduction of photorefraction and therefore doping is widely exploited in optical devices. However, charge transport through Mg:LN and across interfaces such as electrodes also yields potential electronic applications in devices with switchable conductivity states. Furthermore, the introduction of proton exchanged (PE) phases in Mg:LN enhances ionic conductivity thus providing tailorability of conduction mechanisms and functionality dependent on sample composition. To facilitate the construction and design of such multifunctional electronic devices based on periodically PE Mg:LN or similar ferroelectric semiconductors, fundamental understanding of charge transport in these materials, as well as the impact of internal and external interfaces is essential. In order to gain insight into polarization and interface dependent conductivity due to band bending, UV illumination, and chemical reactivity, multi composite wedge shaped samples consisting of polar orientated Mg:LN and PE phases, were investigated using conductive atomic force microscopy. In Mg:LN, three conductivity states (on/off/transient) were observed under UV illumination, controllable by the polarity of the sample and the externally applied electric field. Measurements of currents originating from electrochemical reactions at metal electrode - PE phase interfaces demonstrate a memresistive and rectifying capability of the PE phase. Furthermore, internal interfaces such as domain walls and Mg:LN - PE phase boundaries were found to play a major role in the accumulation of charge carriers due to the polarization gradients, which can lead to increased currents. The insight gained from these findings yield the potential for multifunctional applications such as switchable UV sensitive micro- and nanoelectronic devices and bistable memristors.
机译:掺杂镁的铌酸锂(Mg:LN)中的电导率在降低光折射中起关键作用,因此,掺杂在光学器件中得到了广泛的应用。但是,通过Mg:LN以及跨界面(例如电极)的电荷传输也会在具有可切换电导率状态的设备中产生潜在的电子应用。此外,在Mg:LN中引入质子交换(PE)相可增强离子电导率,从而根据样品成分提供可定制的传导机制和功能。为了促进这种基于周期性PE Mg:LN或类似铁电半导体的多功能电子设备的构造和设计,对这些材料中的电荷传输以及内部和外部接口的影响有基本的了解是必不可少的。为了深入了解由于带弯曲,紫外线照射和化学反应引起的极化和与界面有关的电导率,使用导电原子力显微镜研究了由极性取向的Mg:LN和PE相组成的复合楔形样品。在Mg:LN中,在紫外线照射下观察到三种电导率状态(开/关/瞬态),可通过样品的极性和外部施加的电场来控制。在金属电极-PE相界面处源自电化学反应的电流的测量表明,PE相具有忆阻和整流能力。此外,由于极化梯度,内部界面(例如畴壁和Mg:LN-PE相边界)在电荷载流子的积累中起主要作用,这会导致电流增加。从这些发现中获得的见识为多功能应用提供了潜力,例如可切换的紫外线敏感的微电子和纳米电子器件以及双稳态忆阻器。

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