Optical back-action on the photothermal relaxation rate

被引:6
|
作者
Ma, Jinyong [1 ]
Guccione, Giovanni [1 ]
Lecamwasam, Ruvi [1 ]
Qin, Jiayi [1 ]
Campbell, Geoff T. [1 ]
Buchler, Ben C. [1 ]
Lam, Ping Koy [1 ]
机构
[1] Australian Natl Univ, Ctr Quantum Computat & Commun Technol, Dept Quantum Sci, Res Sch Phys & Engn, Canberra, ACT 2601, Australia
基金
澳大利亚研究理事会;
关键词
THERMAL-NOISE; MIRROR; CAVITY;
D O I
10.1364/OPTICA.412182
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Photothermal effects can alter the response of an optical cavity, for example, by inducing self-locking behavior or unstable anomalies. The consequences of these effects are often regarded as parasitic and generally cause limited operational performance of the cavity. Despite their importance, however, photothermal parameters are usually hard to characterize precisely. In this work, we use an optical cavity strongly coupled to photothermal effects to experimentally observe an optical back-action on the photothermal relaxation rate. This effect, reminiscent of the radiation-pressure-induced optical spring effect in cavity optomechanical systems, uses optical detuning as a fine control to change the photothermal relaxation process. The photothermal relaxation rate of the system can be accordingly modified by more than an order of magnitude. This approach offers an opportunity to obtain precise in situ estimations of the parameters of the cavity in a way that is compatible with a wide range of optical resonator platforms. Through this back-action effect, we are able to determine the natural photothermal relaxation rate and the effective thermal conductivity of cavity mirrors with unprecedented resolution. (C) 2021 Optical Society of America under the terms of the OSA Open Access Publishing Agreement
引用
收藏
页码:177 / 183
页数:7
相关论文
共 50 条
  • [1] SCHRODINGER KITTENS FROM OPTICAL BACK-ACTION EVASION
    SONG, S
    CAVES, CM
    YURKE, B
    COHERENCE AND QUANTUM OPTICS VI, 1989, : 1107 - 1111
  • [2] APPLICATION OF BACK-ACTION EVADING AMPLIFIER TO OPTICAL NETWORK COMMUNICATIONS
    HIMORI, T
    HIROTA, O
    NAKAGAWA, M
    OPTICAL AND QUANTUM ELECTRONICS, 1989, 21 (02) : 131 - 136
  • [3] Back-action supercurrent rectifiers
    Margineda, Daniel
    Crippa, Alessandro
    Strambini, Elia
    Borgongino, Laura
    Paghi, Alessandro
    de Simoni, Giorgio
    Sorba, Lucia
    Fukaya, Yuri
    Mercaldo, Maria Teresa
    Ortix, Carmine
    Cuoco, Mario
    Giazotto, Francesco
    COMMUNICATIONS PHYSICS, 2025, 8 (01):
  • [4] Self-induced back-action optical trapping of dielectric nanoparticles
    Mathieu L. Juan
    Reuven Gordon
    Yuanjie Pang
    Fatima Eftekhari
    Romain Quidant
    Nature Physics, 2009, 5 : 915 - 919
  • [5] Self-induced back-action optical trapping of dielectric nanoparticles
    Juan, Mathieu L.
    Gordon, Reuven
    Pang, Yuanjie
    Eftekhari, Fatima
    Quidant, Romain
    NATURE PHYSICS, 2009, 5 (12) : 915 - 919
  • [6] Self-induced back-action optical trapping in nanophotonic systems
    Neumeier, Lukas
    Quidant, Romain
    Chang, Darrick E.
    NEW JOURNAL OF PHYSICS, 2015, 17
  • [7] Weak value as an indicator of back-action
    Mochizuki, Riuji
    PROGRESS OF THEORETICAL AND EXPERIMENTAL PHYSICS, 2014, 2014 (04):
  • [8] Cavity optomechanics: Back-action at the mesoscale
    Kippenberg, T. J.
    Vahala, K. J.
    SCIENCE, 2008, 321 (5893) : 1172 - 1176
  • [9] Resonant optical trapping and back-action effects in hollow photonic crystal cavities
    Descharmes, Nicolas
    Dharanipathy, Ulagalandha Perumal
    Mario, Tonin
    Diao, Zhaolu
    Houdre, Romuald
    2013 CONFERENCE ON LASERS AND ELECTRO-OPTICS EUROPE AND INTERNATIONAL QUANTUM ELECTRONICS CONFERENCE (CLEO EUROPE/IQEC), 2013,
  • [10] Position and mode dependent optical detection back-action in cantilever beam resonators
    Larsen, T.
    Schmid, S.
    Dohn, S.
    Sader, J. E.
    Boisen, A.
    Villanueva, L. G.
    JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2017, 27 (03)