Laser amplification with a twist: Traveling-wave propagation and gain functions from throughout the cochlea

被引:81
|
作者
Shera, Christopher A.
机构
[1] Massachusetts Eye & Ear Infirm, Eaton Peabody Lab Auditory Physiol, Boston, MA 02114 USA
[2] Harvard Univ, Sch Med, Dept Otol & Laryngol, Boston, MA 02115 USA
来源
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA | 2007年 / 122卷 / 05期
关键词
D O I
10.1121/1.2783205
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Except at the handful of sites explored by the inverse method, the,characteristics-indeed, the very existence-of traveling-wave amplification in the mammalian cochlea remain largely unknown. Uncertainties are especially pronounced in the apex, where mechanical and electrical measurements lack the independent controls necessary for assessing damage to the preparation. At a functional level, the form and amplification of cochlear traveling waves are described by quantities known as propagation and gain functions. A method for deriving propagation and gain functions from basilar-membrane mechanical transfer functions is presented and validated by response reconstruction. Empirical propagation and gain functions from locations throughout the cochlea are obtained in mechanically undamaged preparations by applying the method to published estimates of near-threshold basilar membrane responses derived from Wiener-kernel (chinchilla) and zwuis analysis (cat) of auditory-nerve responses to broadband stimuli. The properties of these functions, and their variation along the length of the cochlea, are described. In both species, and at all locations examined, the gain functions reveal a region of positive power gain basal to the wave peak. The results establish the-existence of traveling-wave amplification throughout the cochlea, including the apex. The derived propagation and gain functions resemble those characteristic of an active optical medium but rotated by 90 degrees in-the complex plane. Rotation of the propagation and gain functions enables the mammalian cochlea to operate as a wideband, hydromechanical laser analyzer. (c) 2007 Acoustical Society of America.
引用
收藏
页码:2738 / 2758
页数:21
相关论文
共 50 条
  • [21] TRAVELING-WAVE AMPLIFICATION BY INTERACTION WITH A CURRENT IN A SEMICONDUCTOR
    THIENNOT, J
    JOURNAL OF APPLIED PHYSICS, 1975, 46 (09) : 3925 - 3933
  • [22] 1.55 μm traveling-wave amplification photodetector
    Piprek, J
    Pasquariello, D
    Lasaosa, D
    Bowers, JE
    2003 INTERNATIONAL CONFERENCE INDIUM PHOSPHIDE AND RELATED MATERIALS, CONFERENCE PROCEEDINGS, 2003, : 499 - 501
  • [23] Traveling-wave noiseless amplification of optical images
    Kolobov, MI
    Sokolov, IV
    Lugiato, LA
    QUANTUM COMMUNICATION, COMPUTING, AND MEASUREMENT 2, 2000, : 487 - 492
  • [24] Traveling-Wave Amplification in a Circuit With Nonuniform Grating
    Ponomarenko, S. S.
    Likhachev, A. A.
    Vlasenko, S. A.
    Kovshov, Yu S.
    Stoyanova, V. V.
    Kishko, S. A.
    Khutoryan, E. M.
    Kuleshov, A. N.
    Lukin, K. A.
    Tatematsu, Y.
    Tani, M.
    IEEE TRANSACTIONS ON ELECTRON DEVICES, 2021, 68 (10) : 5232 - 5237
  • [25] Traveling-wave Amplification Photodetector (TAP detector)
    Lasaosa, D
    Chiu, YJ
    Piprek, J
    Bowers, JE
    LEOS 2000 - IEEE ANNUAL MEETING CONFERENCE PROCEEDINGS, VOLS. 1 & 2, 2000, : 260 - 261
  • [26] VARIABLE GAIN AMPLIFIER WITH TRAVELING-WAVE STRUCTURE
    FLOCH, JM
    DESCLOS, L
    MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 1994, 7 (12) : 539 - 542
  • [27] SUPERRADIANT TRAVELING-WAVE DYE LASER
    MACK, ME
    APPLIED PHYSICS LETTERS, 1969, 15 (06) : 166 - &
  • [28] TRAVELING-WAVE GAS-LASER
    FAXVOG, FR
    GARA, AD
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA, 1974, 64 (04) : 553 - 553
  • [29] A MONOPULSE TRAVELING-WAVE RING LASER
    KRUPKIN, VK
    LEVIT, AL
    OVCHINNIKOV, VM
    KVANTOVAYA ELEKTRONIKA, 1983, 10 (08): : 1709 - 1710
  • [30] TRAVELING-WAVE LASER WITH NEODYMIUM GLASS
    BONCHBRUEVICH, AM
    PETRUNKI.VY
    ESEPKINA, NA
    KRUZHALO.SV
    PAKHOMOV, LN
    CHERNOV, VA
    GALKIN, SL
    SOVIET PHYSICS TECHNICAL PHYSICS-USSR, 1968, 12 (11): : 1495 - +