Department of Applied Physics, KTH Royal Institute of Technology, SE-10691 Stockholm, Sweden.
Department of Chemistry, University of Turku, FI-20014 Turku, Finland.
J Phys Chem Lett. 2023 Apr 13;14(14):3436-3444. doi: 10.1021/acs.jpclett.3c00269. Epub 2023 Apr 3.
The frequency-domain (FD) method provides an alternative to the commonly used time-domain (TD) approach in characterizing the luminescence kinetics of luminophores, with its own strengths, e.g., the capability to decouple multiple lifetime components with higher reliability and accuracy. While extensively explored for characterizing luminophores with down-shifted emission, this method has not been investigated for studying nonlinear luminescent materials such as lanthanide-doped upconversion nanoparticles (UCNPs), featuring more complicated kinetics. In this work, employing a simplified rate-equation model representing a standard two-photon energy-transfer upconversion process, we thoroughly analyzed the response of the luminescence of UCNPs in the FD method. We found that the FD method can potentially obtain from a single experiment the effective decay rates of three critical energy states of the sensitizer/activator ions involved in the upconversion process. The validity of the FD method is demonstrated by experimental data, agreeing reasonably well with the results obtained by TD methods.
频域(FD)方法为荧光动力学的特征提供了一种替代常用的时域(TD)方法,具有自身的优势,例如,能够以更高的可靠性和准确性分离多个寿命分量。虽然已经广泛探索用于表征具有下转换发射的荧光团,但此方法尚未用于研究诸如镧系掺杂上转换纳米粒子(UCNP)等非线性发光材料,因为后者具有更复杂的动力学。在这项工作中,我们采用了一个简化的速率方程模型,该模型代表了标准的双光子能量转移上转换过程,彻底分析了 UCNP 在 FD 方法中的发光响应。我们发现,FD 方法有可能从单个实验中获得参与上转换过程的敏化剂/激活剂离子的三个关键能态的有效衰减率。FD 方法的有效性通过实验数据得到了证明,与通过 TD 方法获得的结果非常吻合。