石墨烯
材料科学
超巨磁阻效应
磁电阻
基质(水族馆)
纳米技术
氧化物
光电子学
纳米尺度
图层(电子)
磁场
海洋学
物理
量子力学
地质学
冶金
作者
Junxiong Hu,Jian Gou,Ming Yang,Ganesh Ji Omar,Junyou Tan,Shengwei Zeng,Yanpeng Liu,Kun Han,Zhishiuh Lim,Zhen Huang,Andrew T. S. Wee,Ariando Ariando
标识
DOI:10.1002/adma.202002201
摘要
Disorder-induced magnetoresistance (MR) effect is quadratic at low perpendicular magnetic fields and linear at high fields. This effect is technologically appealing, especially in 2D materials such as graphene, since it offers potential applications in magnetic sensors with nanoscale spatial resolution. However, it is a great challenge to realize a graphene magnetic sensor based on this effect because of the difficulty in controlling the spatial distribution of disorder and enhancing the MR sensitivity in the single-layer regime. Here, a room-temperature colossal MR of up to 5000% at 9 T is reported in terraced single-layer graphene. By laminating single-layer graphene on a terraced substrate, such as TiO2 -terminated SrTiO3 , a universal one order of magnitude enhancement in the MR compared to conventional single-layer graphene devices is demonstrated. Strikingly, a colossal MR of >1000% is also achieved in the terraced graphene even at a high carrier density of ≈1012 cm-2 . Systematic studies of the MR of single-layer graphene on various oxide- and non-oxide-based terraced surfaces demonstrate that the terraced structure is the dominant factor driving the MR enhancement. The results open a new route for tailoring the physical property of 2D materials by engineering the strain through a terraced substrate.
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