Light scattering in biological tissue significantly limits the accessible depth for localized optical interrogation and deep-tissue optical imaging. This challenge can be overcome by exploiting the time-reversal property of optical phase conjugation (OPC) to reverse multiple scattering events or suppress turbidity. However, in living tissue, scatterers are highly movable and the movement can disrupt time-reversal symmetry when there is a latency in the OPC playback. In this paper, we show that the motion-induced degradation of the OPC turbidity-suppression effect through a dynamic scattering medium shares the same decorrelation time constant as that determined from speckle intensity autocorrelation – a popular conventional measure of scatte...
We recently demonstrated that it is possible to use optical phase conjugation as a means to time re...
The strong optical scattering of biological tissue confounds our ability to focus light deeply into ...
The strong optical scattering of biological tissue confounds our ability to focus light deeply into ...
Light scattering in biological tissue significantly limits the accessible depth for localized optica...
Light scattering in biological tissue significantly limits the accessible depth for localized optica...
Light scattering in biological tissue significantly limits the accessible depth for localized optica...
We present a holography-based in vivo optical phase conjugation experiment performed on a living rab...
We present a holography-based in vivo optical phase conjugation experiment performed on a living rab...
We present a holography-based in vivo optical phase conjugation experiment performed on a living rab...
We describe the amplitude and resolution trends of the signals acquired by turbidity suppression thr...
We describe the amplitude and resolution trends of the signals acquired by turbidity suppression thr...
Elastic optical scattering, the dominant light-interaction process in biological tissues, prevents t...
Elastic optical scattering, the dominant light-interaction process in biological tissues, prevents t...
We recently demonstrated that it is possible to use optical phase conjugation as a means to time re...
Turbidity Suppression via Optical Phase Conjugation (TS-OPC) is an optical phenomenon that uses the...
We recently demonstrated that it is possible to use optical phase conjugation as a means to time re...
The strong optical scattering of biological tissue confounds our ability to focus light deeply into ...
The strong optical scattering of biological tissue confounds our ability to focus light deeply into ...
Light scattering in biological tissue significantly limits the accessible depth for localized optica...
Light scattering in biological tissue significantly limits the accessible depth for localized optica...
Light scattering in biological tissue significantly limits the accessible depth for localized optica...
We present a holography-based in vivo optical phase conjugation experiment performed on a living rab...
We present a holography-based in vivo optical phase conjugation experiment performed on a living rab...
We present a holography-based in vivo optical phase conjugation experiment performed on a living rab...
We describe the amplitude and resolution trends of the signals acquired by turbidity suppression thr...
We describe the amplitude and resolution trends of the signals acquired by turbidity suppression thr...
Elastic optical scattering, the dominant light-interaction process in biological tissues, prevents t...
Elastic optical scattering, the dominant light-interaction process in biological tissues, prevents t...
We recently demonstrated that it is possible to use optical phase conjugation as a means to time re...
Turbidity Suppression via Optical Phase Conjugation (TS-OPC) is an optical phenomenon that uses the...
We recently demonstrated that it is possible to use optical phase conjugation as a means to time re...
The strong optical scattering of biological tissue confounds our ability to focus light deeply into ...
The strong optical scattering of biological tissue confounds our ability to focus light deeply into ...