TY - JOUR
T1 - Efficient real-time detection of terahertz pulse radiation based on photoacoustic conversion by carbon nanotube nanocomposite
AU - Chen, Sung Liang
AU - Chang, You Chia
AU - Zhang, Cheng
AU - Ok, Jong G.
AU - Ling, Tao
AU - Mihnev, Momchil T.
AU - Norris, Theodore B.
AU - Guo, L. Jay
PY - 2014/7
Y1 - 2014/7
N2 - Terahertz sensing plays an important role in industry, biology and material science. Most existing techniques for terahertz detection either require bulky optics or need cryogenic cooling, and the uncooled thermal detectors usually suffer from long integration times (1-1,000 ms). We propose, and experimentally demonstrate, a novel scheme based on photoacoustic detection of terahertz pulse radiation. The transient and localized heating in a carbon nanotube-polymer composite by the absorption of terahertz pulse energy produces ultrasound, which is subsequently detected by a highly sensitive acoustic sensor. In contrast to conventional thermal detectors utilizing continuous heat integration, this new method of terahertz detection responds to the energy of each individual terahertz pulse by a time-gated scheme, thus rejecting the continuous radiation from the ambient. In addition, this novel detector possesses advantages such as room-temperature operation, a fast response (∼1/40.1 μs) allowing real-time detection, compact size (millimetre scale) and wide spectral response.
AB - Terahertz sensing plays an important role in industry, biology and material science. Most existing techniques for terahertz detection either require bulky optics or need cryogenic cooling, and the uncooled thermal detectors usually suffer from long integration times (1-1,000 ms). We propose, and experimentally demonstrate, a novel scheme based on photoacoustic detection of terahertz pulse radiation. The transient and localized heating in a carbon nanotube-polymer composite by the absorption of terahertz pulse energy produces ultrasound, which is subsequently detected by a highly sensitive acoustic sensor. In contrast to conventional thermal detectors utilizing continuous heat integration, this new method of terahertz detection responds to the energy of each individual terahertz pulse by a time-gated scheme, thus rejecting the continuous radiation from the ambient. In addition, this novel detector possesses advantages such as room-temperature operation, a fast response (∼1/40.1 μs) allowing real-time detection, compact size (millimetre scale) and wide spectral response.
UR - http://www.scopus.com/inward/record.url?scp=84903609121&partnerID=8YFLogxK
U2 - 10.1038/nphoton.2014.96
DO - 10.1038/nphoton.2014.96
M3 - Article
AN - SCOPUS:84903609121
SN - 1749-4885
VL - 8
SP - 537
EP - 542
JO - Nature Photonics
JF - Nature Photonics
IS - 7
ER -