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Optical Control of Ferroelectric Domains: Nanoscale Insight into Macroscopic Observations

机译:铁电域的光学控制:纳米级洞察进入宏观观测

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摘要

Domain wall nanoelectronics constitutes a potential paradigm shift for next-generation energy conversion and von-Neumann devices. In this context, attempts have been made to achieve energy-efficient control over ferromagnetic, ferroelectric, and ferroelastic domain walls through electric and magnetic fields or applied stress. However, optical control of ferroic domains offers an additional degree of freedom and significant advantages of reduced hysteresis and Joule heating losses, creating novel opportunities in the regime of nanoelectronics and photonics. Herein, the reversible optical control of ferroelectric domains and domain walls in a novel band-gap-engineered lead-free ferroelectric ceramic ((K0.5Na0.5)NbO3-2 mol% Ba(Ni0.5Nb0.5)O3-delta) is demonstrated. The optical poling behaves similar to electrical poling and is governed by the bulk ferroelectric photovoltaic effect. The light-generated charge carriers are transported toward domain walls or electrodes due to a nonzero field in the samples. This causes a change in internal electric field influencing the nanoscale state of polarization, which could also be interesting for other ferroelectrics if the voltage generated by light is in the range of the switching voltages. This work establishes a relationship between light-induced macroscopic observations and nanoscale changes in the ferroelectric response, providing fundamental insight and facilitating research into ferroelectric photovoltaics and optoelectronics.
机译:域墙纳米电子构成下一代能量转换和von-neumann设备的潜在范式转换。在这种情况下,已经通过电场和磁场或施加的应力来实现对铁磁,铁电和碳水织物域壁的节能控制的尝试。然而,铁域的光学控制提供了额外的自由度和降低滞后和焦耳加热损失的显着优势,在纳米电子和光子学制度中创造了新的机遇。这里,新型带间隙工程的无铅铁电陶瓷((K0.5NA0.5)NBO3-2摩尔%BA(Ni0.5NB0.5)O3-DELTA)中的铁电域和畴壁的可逆光学控制被证明。光学抛光的行为类似于电动抛光,并且由散装铁电光伏效应的控制。由于样品中的非氮字段,光产生的电荷载波向域壁或电极传送。这导致影响纳米级极化状态的内部电场的变化,如果通过光产生的电压处于开关电压的范围,则对于其他铁电器也可能是有趣的。这项工作建立了光致宏观观测和铁电反应中纳米级变化之间的关系,为铁电光伏和光电子提供了基础洞察力和促进研究。

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