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Analysis of detection limit to time-resolved coherent anti-Stokes Raman scattering nanoscopy

Analysis of detection limit to time-resolved coherent anti-Stokes Raman scattering nanoscopy
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摘要 In the implementation of CARS nanoscopy, signal strength decreases with focal volume size decreasing. A crucial problem that remains to be solved is whether the reduced signal generated in the suppressed focal volume can be detected. Here reported is a theoretical analysis of detection limit (DL) to time-resolved CARS (T-CARS) nanoscopy based on our proposed additional probe-beam-induced phonon depletion (APIPD) method for the low concentration samples. In order to acquire a detailed shot-noise limited signal-to-noise (SNR) and the involved parameters to evaluate DL, the T-CARS process is described with full quantum theory to estimate the extreme power density levels of the pump and Stokes beams determined by saturation behavior of coherent phonons, which are both actually on the order of ~ 109 W/cm2. When the pump and Stokes intensities reach such values and the total intensity of the excitation beams arrives at a maximum tolerable by most biological samples in a certain suppressed focal volume (40-nm suppressed focal scale in APIPD method), the DL correspondingly varies with exposure time, for example, DL values are 103 and 102 when exposure times are 20 ms and 200 ms respectively. In the implementation of CARS nanoscopy, signal strength decreases with focal volume size decreasing. A crucial problem that remains to be solved is whether the reduced signal generated in the suppressed focal volume can be detected. Here reported is a theoretical analysis of detection limit (DL) to time-resolved CARS (T-CARS) nanoscopy based on our proposed additional probe-beam-induced phonon depletion (APIPD) method for the low concentration samples. In order to acquire a detailed shot-noise limited signal-to-noise (SNR) and the involved parameters to evaluate DL, the T-CARS process is described with full quantum theory to estimate the extreme power density levels of the pump and Stokes beams determined by saturation behavior of coherent phonons, which are both actually on the order of ~ 109 W/cm2. When the pump and Stokes intensities reach such values and the total intensity of the excitation beams arrives at a maximum tolerable by most biological samples in a certain suppressed focal volume (40-nm suppressed focal scale in APIPD method), the DL correspondingly varies with exposure time, for example, DL values are 103 and 102 when exposure times are 20 ms and 200 ms respectively.
出处 《Chinese Physics B》 SCIE EI CAS CSCD 2014年第10期124-129,共6页 中国物理B(英文版)
基金 Project supported by the National Basic Research Program of China(Grant No.2012CB825802) the Major Scientific Instruments Equipment Development of China(Grant No.2012YQ15009203) the National Natural Science Foundation of China(Grant Nos.60878053 and 11004136) the State Key Laboratory of Precision Measurement Technology and Instruments,Tsinghua University,China(Grant No.DL12-01)
关键词 break through the diffraction limit coherent anti-Stokes Raman scattering nonlinear optics de-tection limit break through the diffraction limit, coherent anti-Stokes Raman scattering, nonlinear optics, de-tection limit
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参考文献34

  • 1Evans eLand Xie X S 2008 Ann. Rev. Anal. Chern. 1883.
  • 2Yuan J H, Xiao F R, Wang G Y and Xu Z Z 2005 Chin. Phys. 14935.
  • 3Li X, Zhang H, Zhang X Y, Zhang S A, Wang Z G and Sun Z R 2008 Chin. Phys. Lett. 25 2062.
  • 4Hajek K M, Littleton B, Turk D, McIntyre T J and Rubinsztein-Dunlop H 2010 Opt. Express 1819263.
  • 5Betzig E, Patterson G H, Sougrat R, Lindwasser 0 W, Olenych S, Bonifacino J S, Davidson M W, Lippincott-Schwartz J and Hess H F 2006 Science 3131642.
  • 6Hell S Wand Wichmann J 1994 Opt. Lett. 19780.
  • 7Beeker W P, Gro P, Lee C J, Cleff C, Offerhaus H L, Fallnich C, Herek J L and Boller K J 2009 Opt. Express 17 22632.
  • 8Nikolaenko A, Krishnamachari V V and Potma E 0 2009 Phys. Rev. A 7913823.
  • 9Beeker W P, Lee C J, Boller K J, Gro P, Cleff C, Fallnich C, Offerhaus H L and Herek J L 2010 Phys. Rev. A 81 12507.
  • 10Cleff C, GroB P, Fallnich C, Offerhaus H L, Herek J L, Kruse K, Beeker W P, Lee C J and Boller K J 2012 Phys. Rev. A 86 23825.

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