Time-reversed magnetically controlled perturbation (TRMCP) optical focusing inside scattering media

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作者
Zhipeng Yu
Jiangtao Huangfu
Fangyuan Zhao
Meiyun Xia
Xi Wu
Xufeng Niu
Deyu Li
Puxiang Lai
Daifa Wang
机构
[1] Beihang University,School of Biological Science and Medical Engineering
[2] The Hong Kong Polytechnic University,Department of Biomedical Engineering
[3] Zhejiang University,Laboratory of Applied Research on Electromagnetics (ARE)
[4] The Hong Kong Polytechnic University,Shenzhen Research Institute
[5] Beihang University,Beijing Advanced Innovation Centre for Biomedical Engineering
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摘要
Manipulating and focusing light deep inside biological tissue and tissue-like complex media has been desired for long yet considered challenging. One feasible strategy is through optical wavefront engineering, where the optical scattering-induced phase distortions are time reversed or pre-compensated so that photons travel along different optical paths interfere constructively at the targeted position within a scattering medium. To define the targeted position, an internal guidestar is needed to guide or provide a feedback for wavefront engineering. It could be injected or embedded probes such as fluorescence or nonlinear microspheres, ultrasonic modulation, as well as absorption perturbation. Here we propose to use a magnetically controlled optical absorbing microsphere as the internal guidestar. Using a digital optical phase conjugation system, we obtained sharp optical focusing within scattering media through time-reversing the scattered light perturbed by the magnetic microsphere. Since the object is magnetically controlled, dynamic optical focusing is allowed with a relatively large field-of-view by scanning the magnetic field externally. Moreover, the magnetic microsphere can be packaged with an organic membrane, using biological or chemical means to serve as a carrier. Therefore, the technique may find particular applications for enhanced targeted drug delivery, and imaging and photoablation of angiogenic vessels in tumours.
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