Qingrong Liang, Guozhong Zheng, Shuaiwei Fan, Liu Yang, Shoujun Zheng
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引用次数: 0
摘要
通过二维材料的堆叠技术,可以通过层间滑动来切换界面极化,称为滑动铁电,具有超薄厚度、高切换速度和高抗疲劳性的优点。然而,揭示菱形材料中滑动路径与极化状态之间的关系仍然是一个挑战,这是二维滑动铁电的关键。本文通过双频共振跟踪压响应力显微镜和导电原子力显微镜报道了菱形层状堆叠InSe (γ-InSe)中依赖于层的多向滑动铁电性。石墨烯/γ-InSe/石墨烯隧穿器件具有可调谐的体光伏效应,由于具有多极化状态,其光伏电流密度可达≈15 mA cm−2。在实验中观察到圆顶状畴壁的产生,并根据理论计算将其归因于多向滑动诱导畴。此外,γ-InSe中的铁电极化确保了隧道器件具有≈255 a W−1的高光响应率和快速的实时成像响应时间。这项工作不仅提供了对菱形堆积二维材料的多向滑动铁电性的见解,而且还强调了它们在可调谐光伏和成像应用方面的潜力。
Multidirectional Sliding Ferroelectricity of Rhombohedral-Stacked InSe for Reconfigurable Photovoltaics and Imaging Applications
Through the stacking technique of 2D materials, the interfacial polarization can be switched by an interlayer sliding, known as sliding ferroelectricity, which is advantageous in ultra-thin thickness, high switching speed, and high fatigue resistance. However, uncovering the relationship between the sliding path and the polarization state in rhombohedral-stacked materials remains a challenge, which is the key to 2D sliding ferroelectricity. Here, layer-dependent multidirectional sliding ferroelectricity in rhombohedral-stacked InSe (γ-InSe) is reported via dual-frequency resonance tracking piezoresponse force microscopy and conductive atomic force microscopy. The graphene/γ-InSe/graphene tunneling device exhibits a tunable bulk photovoltaic effect with a photovoltaic current density of ≈15 mA cm−2 due to multiple polarization states. The generation of dome-like domain walls is observed experimentally, which is attributed to the multidirectional sliding-induced domains based on the theoretical calculations. Furthermore, the ferroelectric polarization in γ-InSe ensures that the tunneling device has a high photo responsivity of ≈255 A W−1 and a fast response time for real-time imaging. The work not only provides insights into the multidirectional sliding ferroelectricity of rhombohedral-stacked 2D materials but also highlights their potential for tunable photovoltaics and imaging applications.
期刊介绍:
Advanced Materials, one of the world's most prestigious journals and the foundation of the Advanced portfolio, is the home of choice for best-in-class materials science for more than 30 years. Following this fast-growing and interdisciplinary field, we are considering and publishing the most important discoveries on any and all materials from materials scientists, chemists, physicists, engineers as well as health and life scientists and bringing you the latest results and trends in modern materials-related research every week.