All-optical polariton transistor

被引:0
|
作者
D. Ballarini
M. De Giorgi
E. Cancellieri
R. Houdré
E. Giacobino
R. Cingolani
A. Bramati
G. Gigli
D. Sanvitto
机构
[1] Istituto Italiano di Tecnologia,Innovation Engineering Department
[2] IIT-Lecce,undefined
[3] NNL,undefined
[4] Istituto Nanoscienze—CNR,undefined
[5] Fisica Teorica de la Materia Condensada,undefined
[6] Universidad Autonoma de Madrid,undefined
[7] Laboratoire Kastler Brossel,undefined
[8] Université Pierre et Marie Curie-Paris 6,undefined
[9] École Normale Supérieure et CNRS,undefined
[10] Institut de Physique de la Matière Condensée,undefined
[11] Faculté des Sciences de Base,undefined
[12] Bâtiment de Physique,undefined
[13] University of Salento,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Although optical technology provides the best solution for the transmission of information, all-optical devices must satisfy several qualitative criteria to be used as logic elements. In particular, cascadability is difficult to obtain in optical systems, and it is assured only if the output of one stage is in the correct form to drive the input of the next stage. Exciton-polaritons, which are composite particles resulting from the strong coupling between excitons and photons, have recently demonstrated huge non-linearities and unique propagation properties. Here we show that polariton fluids moving in the plane of the microcavity can operate as input and output of an all-optical transistor, obtaining up to 19 times amplification and demonstrating the cascadability of the system. Moreover, the operation as an AND/OR gate is shown, validating the connectivity of multiple transistors in the microcavity plane and opening the way to the implementation of polariton integrated circuits.
引用
收藏
相关论文
共 50 条
  • [41] Fault tolerant all-optical router with photorefractive all-optical switch
    Kaino, T
    Okamoto, A
    Honma, S
    ADVANCED OPTICAL DEVICES, TECHNOLOGIES, AND MEDICAL APPLICATIONS, 2002, 5123 : 172 - 178
  • [42] Transverse optical instability patterns in semiconductor microcavities: Polariton scattering and low-intensity all-optical switching
    Luk, M. H.
    Tse, Y. C.
    Kwong, N. H.
    Leung, P. T.
    Lewandowski, Przemyslaw
    Binder, R.
    Schumacher, Stefan
    PHYSICAL REVIEW B, 2013, 87 (20)
  • [43] All-optical buffering in all-optical packet switched cross connects
    Liu, Y
    Hill, MT
    Calabretta, N
    de Waardt, H
    Khoe, GD
    Dorren, HJS
    IEEE PHOTONICS TECHNOLOGY LETTERS, 2002, 14 (06) : 849 - 851
  • [44] All-optical switching and all-optical logic gates based on bacteriorhodopsin
    Huang, Y
    Wu, ST
    Zhao, Y
    NANOBIOPHOTONICS AND BIOMEDICAL APPLICATIONS, 2004, 5331 : 92 - 105
  • [45] All-Optical Linear-Polarization Engineering in Single and Coupled Exciton-Polariton Condensates
    Gnusov, I.
    Sigurdsson, H.
    Topfer, J. D.
    Baryshev, S.
    Alyatkin, S.
    Lagoudakis, P. G.
    PHYSICAL REVIEW APPLIED, 2021, 16 (03)
  • [46] Cascadable all-optical XOR gates for optical ciphertext and all-optical parity calculations
    Kartalopoulos, Stamatios V.
    PHOTON COUNTING APPLICATIONS, QUANTUM OPTICS, AND QUANTUM CRYPTOGRAPHY, 2007, 6583
  • [47] ALL-OPTICAL REPEATER
    SILBERBERG, Y
    OPTICS LETTERS, 1986, 11 (06) : 392 - 394
  • [48] All-optical networks
    Chatterjee, S
    Pawlowski, S
    COMMUNICATIONS OF THE ACM, 1999, 42 (06) : 74 - 83
  • [49] All-optical regeneration
    Simon, JC
    Billes, L
    Dupas, A
    Kowalski, B
    Henry, M
    Landousies, B
    24TH EUROPEAN CONFERENCE ON OPTICAL COMMUNICATION, VOL 1-3: VOL 1: REGULAR AND INVITED PAPERS; VOL 2: TUTORIALS AND SYMPOSIUM PAPERS; VOL 3: POSTDEADLINE PAPERS, 1998, : 467 - 469
  • [50] ALL-OPTICAL NETWORKS
    CHAN, VW
    SCIENTIFIC AMERICAN, 1995, 273 (03) : 72 - &