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Synthesis, optical properties and theoretical modelling of discrete emitting states in doped silicon nanocrystals for bioimaging

机译:的合成、光学性质和理论造型掺杂的离散发射状态硅纳米晶体bioimaging

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摘要

The creation of multiple emission pathways in quantum dots (QDs) is an exciting prospect with fundamental interest and optoelectronic potential. For the first time, we report multiple emission pathways in semiconductor nanocrystals (NCs) where the number of emission pathways desired is controlled by the number of dopant atoms per quantum dot. The origin of additional emission pathways is explained by interactions between dopant states and NC energy levels. Density functional theory (DFT) calculations of undoped 2.3 nm silicon (Si NCs) and the same NCs doped with 2 interstitial Cu atoms show good agreement to experiment. Such calculations provide valuable data to explain the changes in optical transitions due to the Cu dopant in terms of transition energies, quantum yield and dopant position as a function of dopants per NC. Changes in the optical properties of Si NCs induced by dopant concentration include extended excitation range and enhanced absorption coefficients, emission redshifts of up to 60 nm, and a two-fold increase in quantum yields up to 22%. The optical properties of doped NCs lead to significant bioimaging improvements illustrated by in vitro cell imaging, including redshifted excitation wavelengths away from natural autofluorescence and enhanced fluorescent signals.
机译:创建多个发射通路量子点(量子点)是一个令人兴奋的前景根本利益和光电的潜力。在半导体纳米晶体中排放途径(nc)发射通道的数量理想是由掺杂剂的数量原子/量子点。排放途径是由交互掺杂剂之间的状态和数控能级。密度泛函理论(DFT)计算的2.3无掺杂的纳米硅(Si nc)和相同的nc与2间质铜原子掺杂显示良好协议的实验。提供有价值的数据解释的变化光学转换方面由于铜掺杂剂转换能量的量子产量和掺杂剂每数控位置作为掺杂物的函数。在Si nc诱导的光学特性掺杂剂浓度包括扩展的激发范围和增强吸收系数,发射60纳米的红移,和一个双重的增加量子收益率高达22%。掺杂nc导致显著的性质说明了体外bioimaging改进“红移”细胞成像,包括励磁波长远离自然的自发荧光和增强的荧光信号。

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