Nature Communications · 2012 · 153 citations · 43 references
Graphene, a single‑layer carbon lattice discovered eight years ago, has attracted intense research due to its exceptional electronic properties, enabling applications from touch‑screen displays to high‑frequency transistors, and its potential in terahertz electronics is now being explored. The study demonstrates that terahertz photoconductivity of graphene is highly sensitive to adsorbed atmospheric gases, revealing stimulated emission and underscoring the critical role of environmental conditions in high‑speed graphene device design.
Graphene is a single layer of covalently bonded carbon atoms, which was discovered only 8 years ago and yet has already attracted intense research and commercial interest. Initial research focused on its remarkable electronic properties, such as the observation of massless Dirac fermions and the half-integer quantum Hall effect. Now graphene is finding application in touch-screen displays, as channels in high-frequency transistors and in graphene-based integrated circuits. The potential for using the unique properties of graphene in terahertz-frequency electronics is particularly exciting; however, initial experiments probing the terahertz-frequency response of graphene are only just emerging. Here we show that the photoconductivity of graphene at terahertz frequencies is dramatically altered by the adsorption of atmospheric gases, such as nitrogen and oxygen. Furthermore, we observe the signature of terahertz stimulated emission from gas-adsorbed graphene. Our findings highlight the importance of environmental conditions on the design and fabrication of high-speed, graphene-based devices. Graphene is a single layer of carbon atoms whose high electron mobility offers potential for cheap, high-speed opto-electronic devices. Docherty et al.show that the terahertz frequency photoconductivity in graphene depends crucially on the type and density of environmental gas adsorbed.
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