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Deep tissue optical imaging of upconverting nanoparticles enabled by exploiting higher intrinsic quantum yield through use of millisecond single pulse excitation with high peak power.

机译:通过使用具有高峰值功率的毫秒单脉冲激发来利用更高的内在量子产率,从而实现上转换纳米粒子的深层组织光学成像。

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摘要

We have accomplished deep tissue optical imaging of upconverting nanoparticles at 800 nm, using millisecond single pulse excitation with high peak power. This is achieved by carefully choosing the pulse parameters, derived from time-resolved rate-equation analysis, which result in higher intrinsic quantum yield that is utilized by upconverting nanoparticles for generating this near infrared upconversion emission. The pulsed excitation approach thus promises previously unreachable imaging depths and shorter data acquisition times compared with continuous wave excitation, while simultaneously keeping the possible thermal side-effects of the excitation light moderate. These key results facilitate means to break through the general shallow depth limit of upconverting-nanoparticle-based fluorescence techniques, necessary for a range of biomedical applications, including diffuse optical imaging, photodynamic therapy and remote activation of biomolecules in deep tissues.
机译:我们已经完成了使用高峰值功率的毫秒级单脉冲激发在800 nm处上转换纳米粒子的深层组织光学成像。这是通过仔细选择从时间分辨速率方程分析得出的脉冲参数来实现的,该脉冲参数可产生更高的固有量子产率,该固有量子产率可通过上转换纳米颗粒用于产生近红外上转换发射。因此,与连续波激发相比,脉冲激发方法保证了以前无法达到的成像深度和较短的数据采集时间,同时保持了激发光的可能的热副作用适度。这些关键结果促进了突破基于上转换纳米粒子的荧光技术的一般浅深度限制的手段,这对于一系列生物医学应用是必需的,包括扩散光学成像,光动力疗法和深部组织中生物分子的远程激活。

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