材料科学
光致发光
光子上转换
纳米晶
兴奋剂
离子
纳米颗粒
光电子学
纳米技术
核磁共振
化学
物理
有机化学
作者
Rajiv Kumar,Marcin Nyk,Tymish Y. Ohulchanskyy,Chris A. Flask,Paras N. Prasad
标识
DOI:10.1002/adfm.200800765
摘要
Abstract Here, novel nanoprobes for combined optical and magnetic resonance (MR) bioimaging are reported. Fluoride (NaYF 4 ) nanocrystals (20–30 nm size) co‐doped with the rare earth ions Gd 3+ and Er 3+ /Yb 3+ /Eu 3+ are synthesized and dispersed in water. An efficient up‐ and downconverted photoluminescence from the rare‐earth ions (Er 3+ and Yb 3+ or Eu 3+ ) doped into fluoride nanomatrix allows optical imaging modality for the nanoprobes. Upconversion nanophosphors (UCNPs) show nearly quadratic dependence of the photoluminescence intensity on the excitation light power, confirming a two‐photon induced process and allowing two‐photon imaging with UCNPs with low power continuous wave laser diodes due to the sequential nature of the two‐photon process. Furthermore, both UCNPs and downconversion nanophosphors (DCNPs) are modified with biorecognition biomolecules such as anti‐claudin‐4 and anti‐mesothelin, and show in vitro targeted delivery to cancer cells using confocal microscopy. The possibility of using nanoprobes for optical imaging in vivo is also demonstrated. It is also shown that Gd 3+ co‐doped within the nanophosphors imparts strong T1 (Spin‐lattice relaxation time) and T2 (spin‐spin relaxation time) for high contrast MR imaging. Thus, nanoprobes based on fluoride nanophosphors doped with rare earth ions are shown to provide the dual modality of optical and magnetic resonance imaging.
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