Silva Sílvia F V, Figueiredo Gonçalo, Pereira Rui F P, de Zea Bermudez Verónica, Fu Lianshe, André Paulo S, Carneiro Neto Albano N, Ferreira Rute A S
Department of Physics, University of Aveiro, 3810-193 Aveiro, Portugal.
CICECO, Aveiro Institute of Materials, University of Aveiro, 3810-193 Aveiro, Portugal.
Nanoscale. 2024 Nov 13;16(44):20532-20541. doi: 10.1039/d4nr03155e.
Luminescence thermometry presents precise remote temperature measurement capabilities but faces significant challenges in real-world applications, primarily stemming from the calibration's susceptibility to environmental factors. External factors can compromise accuracy, necessitating resilient measurement protocols to ensure dependable temperature (T) readings across various settings. We explore a novel three-dimensional (3D) approach based on time-gated (t) luminescence thermometric parameters, (,), employing physical mixtures of surface-engineered carbon dots (CDs) based on dibenzoylmethane and rhodamine B. These CDs showcase enduring, temperature-responsive, and customizable phosphorescence, easily activated by low-power LEDs and distinguished by their prolonged emission time due to thermally activated delayed phosphorescence. Quantifying the thermal emission dependency is achievable through conventional spectrometer analyses or by capturing photographs with a smartphone's camera under flashlight illumination, yielding up to 30 time-gated ratiometric thermometric parameters per sample. Notably, within the temperature range of 23-45 °C, the maximum relative sensitivity of 7.9% °C surpasses current state-of-the-art CD-based thermometers and ensures temperature readout with low-resolution portable devices as non-modified smartphones.
发光测温技术具有精确的远程温度测量能力,但在实际应用中面临重大挑战,主要源于校准对环境因素的敏感性。外部因素会影响准确性,因此需要有弹性的测量协议,以确保在各种环境下都能可靠地读取温度(T)。我们探索了一种基于时间门控(t)发光测温参数(,)的新型三维(3D)方法,该方法采用了基于二苯甲酰甲烷和罗丹明B的表面工程化碳点(CD)的物理混合物。这些碳点具有持久、温度响应和可定制的磷光特性,能被低功率LED轻松激活,并且由于热激活延迟磷光而具有较长的发射时间。通过传统的光谱仪分析或在手电筒照明下用智能手机相机拍摄照片,可以量化热发射依赖性,每个样品可产生多达30个时间门控比率测温参数。值得注意的是,在23-45°C的温度范围内,7.9% °C的最大相对灵敏度超过了当前基于碳点的最先进温度计,并确保使用未改装的智能手机等低分辨率便携式设备进行温度读数。