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首页> 外文期刊>Advanced Science >Tailored Near‐Infrared Photoemission in Fluoride Perovskites through Activator Aggregation and Super‐Exchange between Divalent Manganese Ions
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Tailored Near‐Infrared Photoemission in Fluoride Perovskites through Activator Aggregation and Super‐Exchange between Divalent Manganese Ions

机译:通过活化剂聚集和二价锰离子之间的超交换,氟化钙钛矿中的近红外光电发射量身定制。

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AbstractBiomedical imaging and labeling through luminescence microscopy requires materials that are active in the near-infrared spectral range, i.e., within the transparency window of biological tissue. For this purpose, tailoring of Mn2+–Mn2+ activator aggregation is demonstrated within the ABF3 fluoride perovskites. Such tailoring promotes distinct near-infrared photoluminescence through antiferromagnetic super-exchange across effective dimers. The crossover dopant concentrations for the occurrence of Mn2+ interaction within the first and second coordination shells comply well with experimental observations of concentration quenching of photoluminescence from isolated Mn2+ and from Mn2+–Mn2+ effective dimers, respectively. Tailoring of this procedure is achieved via adjusting the Mn–F–Mn angle and the Mn–F distance through substitution of the A+ and/or the B2+ species in the ABF3 compound. Computational simulation and X-ray absorption spectroscopy are employed to confirm this. The principle is applied to produce pure anti-Stokes near-infrared emission within the spectral range of ≈760–830 nm from codoped ABF3:Yb3+,Mn2+ upon excitation with a 976 nm laser diode, challenging the classical viewpoint where Mn2+ is used only for visible photoluminescence: in the present case, intense and tunable near-infrared emission is generated. This approach is highly promising for future applications in biomedical imaging and labeling.
机译:摘要通过发光显微镜进行生物医学成像和标记需要使用在近红外光谱范围内(即在生物组织的透明窗口内)具有活性的材料。为此,在ABF 3 氟化钙钛矿中证实了Mn 2 + –Mn 2 + 活化剂聚集的设计。这种剪裁通过有效二聚体之间的反铁磁超交换促进了独特的近红外光致发光。第一和第二配位壳中发生Mn 2 + 相互作用的交叉掺杂物浓度与从分离的Mn 2 + 和Mn 2 + –Mn 2 + 有效二聚体。可以通过替换Mn–F–Mn角和Mn–F距离(通过替换A + 和/或B 2 + 物种来实现此过程的定制) ABF 3 化合物。计算仿真和X射线吸收光谱法被用来确认这一点。该原理适用于从共掺杂的ABF 3 :Yb 3 + ,Mn 产生约760–830 nm光谱范围内的纯反斯托克斯近红外发射在使用976 nm激光二极管激发时> 2 + ,挑战了经典观点,即Mn 2 + 仅用于可见光致发光:在当前情况下,强烈且可调的近红外发射生成。这种方法对于未来在生物医学成像和标记中的应用非常有前途。

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