Ba Zhaojing, Hu Min, Zhao Yiming, Wang Yiqing, Wang Jing, Zhang Zhenxi
Department of Applied Chemistry, School of Science, Xi'an Jiaotong University, Shananxi, Xi'an, 710049, People's Republic of China.
Nanotechnology. 2018 Aug 31;29(35):355704. doi: 10.1088/1361-6528/aac9fd. Epub 2018 Jun 4.
Non-contact thermal sensors are important devices to study cellular processes and monitor temperature in vivo. Herein, a novel highly sensitive nanothermometer based on NaYF:Yb,Er@ NaYF@NaYF:Yb,Tm@ NaYF:Nd (denoted as Er@Y@Tm@Nd) was prepared by a facile solvothermal method. When excited by the near-infrared (NIR) light of 808 and 980 nm, the as-prepared Er@Y@Tm@Nd nanoparticles could emit both blue and green light, respectively, since the lanthanide cations responsible for these emissions are gathered inside this nanostructure. The green and blue light intensity ratio exhibits obvious temperature dependence in the range of the physiological temperature. Additionally, the fluorescence intensity of Er and Tm are also greatly enhanced due to the multilayer structure that implies avoiding the Er and Tm energy cross-relaxation by introduction of a NaYF wall between them. The as-prepared core-shell-shell-shell structure with Er and Tm in different layers improves dozens of times of the thermal sensitivity based on the non-thermal coupling levels of the probe: the maximum values for the sensitivity are 2.95% K (I /I ) and 6.30% K (I /I ) when excited by 980 and 808 nm laser sources, respectively. These values are well above those previously reported (<0.7% K), indicating that the prepared nanostructures are temperature sensors with excellent thermal sensitivity and sensitive to NIR wavelength excitation that makes them highly preferred for thermal detection.
非接触式热传感器是研究细胞过程和监测体内温度的重要设备。在此,通过简便的溶剂热法制备了一种基于NaYF:Yb,Er@NaYF@NaYF:Yb,Tm@NaYF:Nd(记为Er@Y@Tm@Nd)的新型高灵敏度纳米温度计。当用808和980 nm的近红外(NIR)光激发时,所制备的Er@Y@Tm@Nd纳米颗粒可分别发射蓝光和绿光,因为负责这些发射的镧系阳离子聚集在该纳米结构内部。在生理温度范围内,绿光与蓝光强度比呈现明显的温度依赖性。此外,由于多层结构避免了Er和Tm之间的能量交叉弛豫,Er和Tm的荧光强度也大大增强。所制备的具有不同层中含有Er和Tm的核-壳-壳-壳结构基于探针的非热耦合水平将热灵敏度提高了数十倍:当分别用980和808 nm激光源激发时,灵敏度的最大值分别为2.95% K(I /I )和6.30% K(I /I )。这些值远高于先前报道的值(<0.7% K),表明所制备的纳米结构是具有优异热灵敏度且对近红外波长激发敏感的温度传感器,这使得它们非常适合用于热检测。