Apte Amey, Mozaffari Kosar, Samghabadi Farnaz Safi, Hachtel Jordan A, Chang Long, Susarla Sandhya, Idrobo Juan Carlos, Moore David C, Glavin Nicholas R, Litvinov Dmitri, Sharma Pradeep, Puthirath Anand B, Ajayan Pulickel M
Department of Materials Science and NanoEngineering, Rice University, 6100 Main Street, Houston, TX, 77005, USA.
Department of Mechanical Engineering, University of Houston, 4726 Calhoun Road, Houston, TX, 77204, USA.
Adv Mater. 2020 Jun;32(24):e2000006. doi: 10.1002/adma.202000006. Epub 2020 May 6.
Since graphene, a variety of 2D materials have been fabricated in a quest for a tantalizing combination of properties and desired physiochemical behavior. 2D materials that are piezoelectric, i.e., that allow for a facile conversion of electrical energy into mechanical and vice versa, offer applications for sensors, actuators, energy harvesting, stretchable and flexible electronics, and energy storage, among others. Unfortunately, materials must satisfy stringent symmetry requirements to be classified as piezoelectric. Here, 2D ultrathin single-crystal molybdenum oxide (MoO ) flakes that exhibit unexpected piezoelectric-like response are fabricated, as MoO is centrosymmetric and should not exhibit intrinsic piezoelectricity. However, it is demonstrated that the apparent piezoelectricity in 2D MoO emerges from an electret-like behavior induced by the trapping and stabilization of charges around defects in the material. Arguably, the material represents the first 2D electret material and suggests a route to artificially engineer piezoelectricity in 2D crystals. Specifically, it is found that the maximum out-of-plane piezoresponse is 0.56 pm V , which is as strong as that observed in conventional 2D piezoelectric materials. The charges are found to be highly stable at room temperature with a trapping energy barrier of ≈2 eV.
自从石墨烯问世以来,人们制备了各种二维材料,以寻求诱人的性能组合和理想的物理化学行为。二维压电材料,即能够轻松地将电能转化为机械能,反之亦然的材料,在传感器、致动器、能量收集、可拉伸和柔性电子器件以及能量存储等领域有应用。不幸的是,材料必须满足严格的对称性要求才能被归类为压电材料。在此,制备出了表现出意外的类压电响应的二维超薄单晶氧化钼(MoO)薄片,因为MoO是中心对称的,不应表现出本征压电性。然而,结果表明二维MoO中的表观压电性源于材料中缺陷周围电荷的捕获和稳定所诱导的类似驻极体的行为。可以说,这种材料代表了第一种二维驻极体材料,并为在二维晶体中人工设计压电性提供了一条途径。具体而言,发现最大面外压电响应为0.56 pm V,与传统二维压电材料中观察到的一样强。发现电荷在室温下高度稳定,俘获能垒约为2 eV。