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通过控制双脉冲飞秒激光激发的相位差,实现了金纳米粒子的双光子光致发光成像对比度的显著增强。

Great enhancement on two-photon photoluminescence imaging contrast of Au nanoparticles via double-pulse femtosecond laser excitation with controlled phase differences.

出版信息

Opt Express. 2021 Jul 19;29(15):22855-22867. doi: 10.1364/OE.428428.

Abstract

Au nanoparticles are attractive contrast agents for noninvasive living tissue imaging with deep penetration because of their strong two-photon photoluminescence (TPPL) intensity and excellent biocompatibility. However, the inevitable phototoxicity and huge auto-fluorescence are consistently associated with laser excitation. Therefore, enhancement of TPPL intensity and suppression of backgrounds are always highly desired under the demand of reducing excitation powers. In this work, we develop a double-pulse TPPL (DP-TPPL) scheme with controlled phase differences (Δφ) between the double pulses to significantly improve the signal-to-noise ratio (SNR) of TPPL imaging. Under the modulated phase (Δφ periodically varying between 0-2π), our results show that SNR can be improved from 4.3 to 1715, with an enhancement of up to 400 folds at the integration of 50 ms. More importantly, this enhancement can be unlimitedly lifted by increasing the number of photons or integration times in principle. Further boosting has been achieved by reducing the magnitude of background noises; subsequently, SNR is improved by more than 10 times. Our schemes offer great potential for reducing phototoxicity and extracting extremely weak signals from huge backgrounds and open up a new possibility for a rapid, flexible, and reliable medical diagnosis by TPPL imaging with diminished laser powers.

摘要

金纳米颗粒由于其强双光子光致荧光(TPPL)强度和优异的生物相容性,成为非侵入式活体组织成像的有吸引力的对比剂,具有深穿透能力。然而,不可避免的光毒性和巨大的自体荧光总是伴随着激光激发而存在。因此,在降低激发功率的需求下,始终强烈期望增强 TPPL 强度和抑制背景。在这项工作中,我们开发了一种具有受控相位差(Δφ)的双脉冲 TPPL(DP-TPPL)方案,以显著提高 TPPL 成像的信噪比(SNR)。在调制相位(Δφ 在 0-2π 之间周期性变化)下,我们的结果表明,信噪比可以从 4.3 提高到 1715,在 50ms 的积分时间内,增强高达 400 倍。更重要的是,原则上通过增加光子数量或积分时间可以无限提高这种增强。通过减小背景噪声的幅度进一步提高了增强效果;随后,信噪比提高了 10 多倍。我们的方案为降低光毒性和从巨大背景中提取极弱信号提供了巨大的潜力,并为通过 TPPL 成像以降低激光功率实现快速、灵活和可靠的医学诊断开辟了新的可能性。

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