石墨烯
材料科学
氮化镓
六方氮化硼
氮化硼
镓
外延
氮化物
带隙
纳米技术
光电子学
宽禁带半导体
冶金
图层(电子)
作者
Zakaria Y. Al Balushi,Ke Wang,Ram Krishna Ghosh,Rafael A. Vilá,Sarah M. Eichfeld,Joshua D. Caldwell,Xiaoye Qin,Yu‐Chuan Lin,Paul A. DeSario,Greg Stone,S. Subramanian,Deepanjan Paul,Robert M. Wallace,Suman Datta,Joan M. Redwing,Joshua A. Robinson
出处
期刊:Nature Materials
[Springer Nature]
日期:2016-08-29
卷期号:15 (11): 1166-1171
被引量:623
摘要
The spectrum of two-dimensional (2D) and layered materials 'beyond graphene' offers a remarkable platform to study new phenomena in condensed matter physics. Among these materials, layered hexagonal boron nitride (hBN), with its wide bandgap energy (∼5.0-6.0 eV), has clearly established that 2D nitrides are key to advancing 2D devices. A gap, however, remains between the theoretical prediction of 2D nitrides 'beyond hBN' and experimental realization of such structures. Here we demonstrate the synthesis of 2D gallium nitride (GaN) via a migration-enhanced encapsulated growth (MEEG) technique utilizing epitaxial graphene. We theoretically predict and experimentally validate that the atomic structure of 2D GaN grown via MEEG is notably different from reported theory. Moreover, we establish that graphene plays a critical role in stabilizing the direct-bandgap (nearly 5.0 eV), 2D buckled structure. Our results provide a foundation for discovery and stabilization of 2D nitrides that are difficult to prepare via traditional synthesis.
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