School of Physics, State Key Lab for Mesoscopic Physics, Peking University , Beijing 100871, China.
Nano Lett. 2014 Jan 8;14(1):299-304. doi: 10.1021/nl404042h. Epub 2013 Dec 18.
If not for its inherently weak optical absorption at visible and infrared wavelengths, graphene would show exceptional promise for optoelectronic applications. Here we show that by nanopatterning a graphene layer into an array of closely packed graphene nanodisks, its absorption efficiency can be increased from less than 3% to 30% in the infrared region of the spectrum. We examine the dependence of the enhanced absorption on nanodisk size and interparticle spacing. By incorporating graphene nanodisk arrays into an active device, we demonstrate that this enhanced absorption efficiency is voltage-tunable, indicating strong potential for nanopatterned graphene as an active medium for infrared electro-optic devices.
如果不是因为其在可见光和红外波长下固有较弱的光学吸收,那么石墨烯在光电子应用方面将具有非常有前景的应用。在这里,我们展示了通过将石墨烯层纳米图案化为紧密堆积的石墨烯纳米盘阵列,可以将其在光谱的红外区域的吸收效率从小于 3%提高到 30%。我们研究了增强吸收与纳米盘尺寸和颗粒间间距的关系。通过将石墨烯纳米盘阵列集成到有源器件中,我们证明了这种增强的吸收效率是可以通过电压调节的,这表明纳米图案化石墨烯作为红外电光器件的有源介质具有很大的潜力。