Literature DB >> 20052244

Quantum dot infrared photodetector enhanced by surface plasma wave excitation.

S C Lee1, S Krishna, S R J Brueck.   

Abstract

Up to a thirty-fold detectivity enhancement is achieved for an InAs quantum dot infrared photodetector (QDIP) by the excitation of surface plasma waves (SPWs) using a metal photonic crystal (MPC) integrated on top of the detector absorption region. The MPC is a 100 nm-thick gold film perforated with a 3.6 microm period square array of circular holes. A bare QDIP shows a bias-tunable broadband response from approximately 6 to 10 microm associated with the quantum confined Stark (QCS) effect. On the other hand, an MPC-integrated QDIP exhibits a dominant peak at 11.3 microm with a approximately 1 microm full width at half maximum and the highly enhanced detectivity at the bias polarity optimized for long wavelength. This is very different from the photoresponse of the bare QDIP but fully consistent with the direct coupling of the QDs in the detector absorption region to the SPWs excited at the MPC/detector interface by incident photons. The SPW resonance wavelength, lambda, for the smallest coupling wavevector of the array in the MPC is close to 11.3 microm. The response also shows other SPW-coupled peaks: a significant peak at 8.1 microm (approximately lambda/radical2) and noticeable peaks at 5.8 microm (approximately lambda/2) and 5.4 microm (approximately lambda/ radical5) which correspond to higher-order coupling wavevectors. For the opposite bias, the MPC-integrated QDIP shows the highest response at 8.1 microm, providing a dramatic voltage tunability that is associated with QCS effect. SPWs propagate with TM (x, z) polarization along the MPC/detector interface. The enhanced detectivity is explained by these characteristics which increase both the effective absorption cross section with propagation and the interaction strength with TM polarization in the coupling to the QDs. Simulations show good qualitative agreement with the observed spectral behavior.

Mesh:

Year:  2009        PMID: 20052244     DOI: 10.1364/OE.17.023160

Source DB:  PubMed          Journal:  Opt Express        ISSN: 1094-4087            Impact factor:   3.894


  5 in total

1.  A monolithically integrated plasmonic infrared quantum dot camera.

Authors:  Sang Jun Lee; Zahyun Ku; Ajit Barve; John Montoya; Woo-Yong Jang; S R J Brueck; Mani Sundaram; Axel Reisinger; Sanjay Krishna; Sam Kyu Noh
Journal:  Nat Commun       Date:  2011       Impact factor: 14.919

Review 2.  Controlling the synthesis and assembly of silver nanostructures for plasmonic applications.

Authors:  Matthew Rycenga; Claire M Cobley; Jie Zeng; Weiyang Li; Christine H Moran; Qiang Zhang; Dong Qin; Younan Xia
Journal:  Chem Rev       Date:  2011-03-11       Impact factor: 60.622

3.  A Low-loss Metasurface Antireflection Coating on Dispersive Surface Plasmon Structure.

Authors:  Jiyeon Jeon; Khagendra Bhattarai; Deok-Kee Kim; Jun Oh Kim; Augustine Urbas; Sang Jun Lee; Zahyun Ku; Jiangfeng Zhou
Journal:  Sci Rep       Date:  2016-11-02       Impact factor: 4.379

4.  Oscillatory penetration of near-fields in plasmonic excitation at metal-dielectric interfaces.

Authors:  S C Lee; J H Kang; Q-H Park; S Krishna; S R J Brueck
Journal:  Sci Rep       Date:  2016-04-19       Impact factor: 4.379

5.  Plasmonic-Layered InAs/InGaAs Quantum-Dots-in-a-Well Pixel Detector for Spectral-Shaping and Photocurrent Enhancement.

Authors:  Jehwan Hwang; Zahyun Ku; Jiyeon Jeon; Yeongho Kim; Jun Oh Kim; Deok-Kee Kim; Augustine Urbas; Eun Kyu Kim; Sang Jun Lee
Journal:  Nanomaterials (Basel)       Date:  2020-09-13       Impact factor: 5.076

  5 in total

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