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Interplay between Static and Dynamic Energy Transfer in Biofunctional Upconversion Nanoplatforms

机译:静态和动态能量转移在生物功能上增强纳米载体中的相互作用

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摘要

Clarification of the energy-transfer (ET) mechanism is of vital importance for constructing efficient upconversion nanoplatforms for biological/biomedical applications. Yet, most strategies of optimizing these nanoplatforms were casually based on a dynamic ET assumption. In this work, we have modeled quantitatively the shell-thickness-dependent interplay between dynamic and static ET in nanosystems and validated the model in a typical biofunctional upconversion nanoplatform composed of NaYF4:Er, Yb/NaYF4 upconversion nanoparticles (UCNPs), and energy-acceptor photosensitizing molecule Rose Bengal (RB). It was determined that with a proper thickness shell, the energy transferred via dynamic ET as well as static ET in this case could be significantly improved by ∼4 and ∼9 fold, respectively, compared with the total energy transferred from bare core UCNPs. Our results shall form the bedrock in designing highly efficient ET-based biofunctional nanoplatforms
机译:澄清能量转移(ET)机制对于构建生物/生物医学应用的有效上变性纳米片来至关重要。然而,大多数优化这些纳米纳薄形式的策略随意基于动态等假设。在这项工作中,我们已经定量地建模了动态和静态等之间的壳体厚度依赖性相互作用,并在典型的生物功能上转化纳米片上验证了由Nayf4:ER,Yb / Nayf4上变化纳米颗粒(UCNP)和能量的典型生物功能上变化纳米片。和能量 - 接受者光敏分子升降孟加拉(RB)。通过适当的厚度壳,通过动态ET和静态等,分别通过从裸芯UCNP传递的总能量相比,通过动态ET和静态等传输的能量和静态等。我们的结果应在设计高效的基于ET的生物功能纳米片上形成基岩

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