Showing posts with label P. Jarillo-Herrero. Show all posts
Showing posts with label P. Jarillo-Herrero. Show all posts

Monday, April 13, 2015

Abstract-Generation of photovoltage in graphene on a femtosecond timescale through efficient carrier heating



http://www.nature.com/nnano/journal/vaop/ncurrent/full/nnano.2015.54.html
Nature Nanotechnology
 
 
doi:10.1038/nnano.2015.54
Received
 
Accepted
 
Published online
 
Graphene is a promising material for ultrafast and broadband photodetection. Earlier studies have addressed the general operation of graphene-based photothermoelectric devices and the switching speed, which is limited by the charge carrier cooling time, on the order of picoseconds. However, the generation of the photovoltage could occur at a much faster timescale, as it is associated with the carrier heating time. Here, we measure the photovoltage generation time and find it to be faster than 50 fs. As a proof-of-principle application of this ultrafast photodetector, we use graphene to directly measure, electrically, the pulse duration of a sub-50 fs laser pulse. The observation that carrier heating is ultrafast suggests that energy from absorbed photons can be efficiently transferred to carrier heat. To study this, we examine the spectral response and find a constant spectral responsivity of between 500 and 1,500 nm. This is consistent with efficient electron heating. These results are promising for ultrafast femtosecond and broadband photodetector applications.

At a glance

Figures

left
  1. Hot electron dynamics and their experimental extraction.
    Figure 1
  2. Femtosecond sensing of hot electrons.
    Figure 2
  3. Spectral response.
    Figure 3
  4. Electron heating efficiency.
    Figure 4
right

Monday, January 28, 2013

Abstract-Observation of suppressed terahertz absorption in photoexcited graphene


http://graphenetimes.com/2013/01/observation-of-suppressed-terahertz-absorption-in-photoexcited-graphene/

When light is absorbed by a semiconductor, photoexcited charge carriers enhance the absorption of far-infrared radiation due to intraband scattering. We observe the opposite behavior in monolayer graphene, a zero-gap semiconductor with lin- ear dispersion. By using time domain terahertz (THz) spectroscopy in conjunction with optical pump excitation, we observe a reduced absorption of THz radiation in photoexcited graphene. The measured spectral shape of the differential optical conductivity exhibits strongly non-Drude behavior. We discuss the influence of hot optical phonons, thermally broadened carrier distribution, and stimulated emission of THz radiation on the low-frequency non-equilibrium optical response of graphene.