An Analytic Approach to Nanofocusing with Pyramidal Horn Antennas

被引:1
|
作者
Chen, Shuwen [1 ]
Gordon, Reuven [2 ]
机构
[1] Natl Univ Def Technol, Coll Informat & Commun, Xian, Shaanxi, Peoples R China
[2] Univ Victoria, Dept Elect & Comp Engn, Victoria, BC V8W 3V6, Canada
基金
中国国家自然科学基金;
关键词
Surface plasmons; Subwavelength structures; Nanofocusing; Nanoantennas; Pyramidal horn antennas; HIGH HARMONIC-GENERATION; EFFECTIVE-INDEX METHOD; WAVE-GUIDES; REAL METAL; PLASMONIC NANOANTENNAS; FIELD ENHANCEMENT; OPTICAL ANTENNAS; CROSS-SECTION; LIGHT; OPTIMIZATION;
D O I
10.1007/s11468-017-0646-6
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Horn antenna is one of the simplest even widely used antennas in the RF and microwave regimes. However, few systematic investigations on pyramidal horn antennas are found at optical frequency while optical antennas are extensively studied in various applications. Here, we investigate the feature of pyramidal horn nanoantennas and explore the mechanism of nanofocusing. Although the dimensions of antenna can be optimized through numerical simulations for the applications, it is inefficient due to the large degree of freedom of a horn antenna. Firstly, we analyze both the scattering loss and the dissipative loss during compressing electromagnetic waves in the horn antennas while the dimensions gradually decrease. Then, we establish an analytic and simple approach of mode matching, which is based on the effective index method, to efficiently squeeze light into arbitrarily small 3D nanospots. We numerically demonstrate that a nanofocusing spot of pi lambda (2)/1200 at the wavelength of 785 nm with 1.2 dB losses is achieved by a pyramidal horn nanoantenna with the analytically determined dimensions. The intensity enhancement is further increased to more than 6000 times by introducing surface plasmon coupling at the input interface.
引用
收藏
页码:1417 / 1423
页数:7
相关论文
共 50 条
  • [31] Parametric analysis of the pyramidal horn partially filled
    Vital, DS
    Descardeci, JR
    MIKON-2002: XIV INTERNATIONAL CONFERENCE ON MICROWAVES, RADAR AND WIRELESS COMMUNICATIONS, VOLS 1-3, PROCEEDINGS, 2002, : 930 - 933
  • [32] H-PLANE PATTERN OF A PYRAMIDAL HORN
    YU, JS
    RUDDUCK, RC
    IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 1969, AP17 (05) : 651 - &
  • [33] ANTENNA GAIN CALIBRATION USING TIME-DOMAIN GATING IN EXTRAPOLATION RANGE FOR V-BAND PYRAMIDAL HORN ANTENNAS
    Ameya, Michitaka
    Hirose, Masanobu
    Kurokawa, Satoru
    2010 CONFERENCE ON PRECISION ELECTROMAGNETIC MEASUREMENTS CPEM, 2010, : 771 - 772
  • [34] PYRAMIDAL HORN GAIN CALCULATION WITH IMPROVED ACCURACY
    MAYBELL, MJ
    SIMON, PS
    IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 1993, 41 (07) : 884 - 889
  • [35] Optimization of UWB pyramidal horn antenna with load
    Xia, Yingqing
    Edwards, D. J.
    IEEE 2007 INTERNATIONAL SYMPOSIUM ON MICROWAVE, ANTENNA, PROPAGATION AND EMC TECHNOLOGIES FOR WIRELESS COMMUNICATIONS, VOLS I AND II, 2007, : 673 - 675
  • [36] Investigation of the Performances of X-Ku Band 3D Printing Pyramidal Horn Antennas Coated with the Different Metals
    Genc, Abdullah
    Basyigit, Ibrahim Bahadir
    Goksu, Tuna
    Helhel, Selcuk
    2017 10TH INTERNATIONAL CONFERENCE ON ELECTRICAL AND ELECTRONICS ENGINEERING (ELECO), 2017, : 1012 - 1016
  • [37] Multiple-cavity horn antennas
    Hwang, R.B.
    Peng, S.T.
    Asia-Pacific Microwave Conference Proceedings, APMC, 1999, 2 : 363 - 366
  • [38] Effects of Electrically Large Radome on Pyramidal Horn
    Meng, Hongfu
    Dou, Wenbin
    APMC: 2008 ASIA PACIFIC MICROWAVE CONFERENCE (APMC 2008), VOLS 1-5, 2008, : 903 - 906
  • [39] On the optimum pyramidal-horn design methods
    Teo, Jing Lu
    Selvan, Krishnasamy T.
    INTERNATIONAL JOURNAL OF RF AND MICROWAVE COMPUTER-AIDED ENGINEERING, 2006, 16 (06) : 561 - 564
  • [40] Improved method for designing multimode pyramidal horn
    Univ of Electronic Science and, Technology of China, Chengdu, China
    Tien Tzu Hsueh Pao, 6 (81-84):