Terahertz radiation of a butterfly-shaped photoconductive antenna(invited)

被引:0
|
作者
Jitao Zhang [1 ,2 ]
Mingguang Tuo [1 ]
Min Liang [1 ]
WeiRen Ng [1 ]
Michael EGehm [1 ,3 ]
Hao Xin [1 ]
机构
[1] Department of Electrical and Computer Engineering, University of Arizona
[2] Fischell Department of Bioengineering, University of Maryland
[3] Department of Electrical and Computer Engineering, Duke
关键词
terahertz; photoconductive antenna; butterfly; time domain spectroscopy;
D O I
暂无
中图分类号
O441 [电磁学]; TN826 [天线:按材料分];
学科分类号
0809 ;
摘要
The terahertz(THz) far-field radiation properties of a butterfly-shaped photoconductive antenna(PCA) were experimentally studied using a home-built THz time-domain spectroscopy(THz-TDS) setup.To distinguish the contribution of in-gap photocurrent and antenna structure to far-field radiation,polarization-dependent THz field was measured and quantified as the illuminating laser beam moved along the bias field within the gap region of electrodes. The result suggests that, although the far-field THz radiation originates from the in-gap photocurrent, the antenna structure of butterfly-shaped PCA dominates the overall THz radiation. In addition, to explore the impact of photoconductive material,radiation properties of butterfly-shaped PCAs fabricated on both low-temperature-grown GaAs(LT-GaAs) and semi-insulating GaAs(Si-GaAs) were characterized and compared. Consistent with previous experiments, it is observed that while Si-GaAs-based PCA can emit higher THz field than LT-GaAs-based PCA at low laser power, it would saturate more severely as laser power increased and eventually be surpassed by LT-GaAs-based PCA. Beyond that, it is found the severe saturation effect of Si-GaAs was due to the longer carrier lifetime and higher carrier mobility, which was confirmed by the numerical simulation.
引用
收藏
页码:9 / 17
页数:9
相关论文
共 7 条
  • [1] Review of terahertz photoconductive antenna technology
    Burford, Nathan M.
    El-Shenawee, Magda O.
    [J]. OPTICAL ENGINEERING, 2017, 56 (01)
  • [2] Generation of THz transients by photoexcited single-crystal GaAs meso-structures[J] . Jie Zhang,Martin Mikulics,Roman Adam,Detlev Grützmacher,Roman Sobolewski.Applied Physics B . 2013 (3)
  • [3] Terahertz-radiation-enhanced broadband terahertz generation from large aperture photoconductive antenna[J] . Yaohui Gao,Chia-En Yang,Yunching Chang,Jimmy Yao,Stuart Yin,Claire Luo,Paul Ruffin,Christina Brantley,Eugene Edwards.Applied Physics B . 2012 (1)
  • [4] Photoconductive Emission and Detection of Terahertz Pulsed Radiation Using Semiconductors and Semiconductor Devices
    Tani, Masahiko
    Yamamoto, Kohji
    Estacio, Elmer S.
    Que, Christopher T.
    Nakajima, Hidekazu
    Hibi, Masakazu
    Miyamaru, Fumiaki
    Nishizawa, Seizi
    Hangyo, Masanori
    [J]. JOURNAL OF INFRARED MILLIMETER AND TERAHERTZ WAVES, 2012, 33 (04) : 393 - 404
  • [5] Terahertz spectroscopy and imaging – Modern techniques and applications[J] . P.U.Jepsen,D.G.Cooke,M.Koch.Laser & Photon. Rev. . 2010 (1)
  • [6] Dependence of terahertz radiation on gap sizes of biased multi-energy arsenic-ion-implanted and semi-insulating GaAs antennas
    Liu, T. -A.
    Chou, R. -H.
    Pan, C. -L.
    [J]. APPLIED PHYSICS B-LASERS AND OPTICS, 2009, 95 (04): : 739 - 744
  • [7] Temperature dependence of terahertz radiation from n-type InSb and n-type InAs surfaces
    Kono, S
    Gu, P
    Tani, M
    Sakai, K
    [J]. APPLIED PHYSICS B-LASERS AND OPTICS, 2000, 71 (06): : 901 - 904