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Morphology-dependent energy transfer dynamics in fluorene-based amphiphile nanoparticles

机译:芴基两亲纳米颗粒中形态依赖的能量转移动力学

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Figure Persented: Nanoparticles are interesting systems to study because of their large range of potential uses in biological imaging and sensing. We investigated molecular nanoparticles formed by fast injection of a small volume of molecularly dissolved fluorene-derivative amphiphilic molecules into a polar solvent, which resulted in solid spherical particles of ~80 nm diameter with high stability. Energy transfer studies were carried out on two-component nanoparticles that contained mixtures of donor and acceptor amphiphiles of various fractions. We conducted time-resolved photoluminescence measurements on the two-component nanoparticles in order to determine whether the fundamental donor-acceptor interaction parameter (the F?rster radius) depends on the acceptor concentration. The F?rster radius was found to be large for very low incorporated acceptor fractions (<0.1%), but it declined with increasing concentration. These changes were concomitant with shifts in the acceptor emission and absorption circular dichroism spectra that indicated an increasing clustering of acceptors into domains as their fraction was raised. In addition, for acceptor fractions below 2% the extracted F?rster radii were found to be significantly larger than predicted from donor-acceptor spectral overlap calculations, in accordance with efficient excitation diffusion within the donor matrix, aiding the overall transfer to acceptors. We conclude that energy transfer in two-component nanoparticles shows a complex interplay between phase segregation of the constituent donor and acceptor molecules and excitation diffusion within their domains.
机译:可能的图:由于纳米粒子在生物成像和传感领域的广泛用途,因此它们是值得研究的系统。我们研究了通过将少量分子溶解的芴衍生物两亲分子快速注入极性溶剂中而形成的分子纳米颗粒,从而产生了直径约为80 nm的具有高稳定性的固体球形颗粒。对包含不同部分供体和受体两亲物混合物的两组分纳米颗粒进行了能量转移研究。为了确定基本的供体-受体相互作用参数(弗斯特半径)是否取决于受体浓度,我们对两组分纳米颗粒进行了时间分辨的光致发光测量。发现掺入极低的受体分数(<0.1%)时,费斯特半径很大,但随着浓度的增加而减小。这些变化与受体发射和吸收圆二色性光谱的变化相伴随,这表明随着受体分数的增加,受体向域中的聚集不断增加。另外,根据供体基体中的有效激发扩散,有助于提取受体的分数小于2%的提取的Frster半径,其半径明显大于从供体-受体光谱重叠计算所预测的范围,从而有助于向受体的整体转移。我们得出的结论是,两组分纳米颗粒中的能量转移显示出组成供体和受体分子的相分离与域内激发扩散之间的复杂相互作用。

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