Zhuang Baikang, Yang Yubiao, Huang Kaihang, Yin Jinchang
Opt Lett. 2024 Nov 15;49(22):6489-6492. doi: 10.1364/OL.540944.
With ongoing advancements in photothermal therapy, achieving efficient tumor cell eradication while minimizing damage to healthy tissues necessitates a highly effective and non-invasive real-time temperature monitoring technique for human tissues. Herein, we report a near-infrared (NIR)-II optical temperature sensing nanoprobe featuring rare-earth-doped gadolinium oxide nanocrystals (RENCs) attached to the dumbbell mesoporous silica-coated gold nanorods (AuNRs). The composite nanoprobe presents an intense absorption in the NIR region, and NIR-II photoluminescence (PL) increases by 97.2 to 102-fold compared to pure RENCs upon 980 nm irradiation. The localized electric field generated through surface plasmon resonance effects of AuNRs demonstrated a dumbbell-shaped distribution that aligns with the structure of nanoprobes, maximizing the PL enhancement of RENCs. Moreover, the NIR-II emissions are changed with the rising temperature, with an exceptional relative sensitivity of 7.25% K at 338 K based on PL lifetime, indicating the nanoprobe is highly potential for optical temperature sensing.
随着光热疗法的不断进步,要在实现高效根除肿瘤细胞的同时将对健康组织的损害降至最低,就需要一种用于人体组织的高效且非侵入性的实时温度监测技术。在此,我们报告了一种近红外(NIR)-II光学温度传感纳米探针,其特征在于将稀土掺杂的氧化钆纳米晶体(RENCs)附着到哑铃形介孔二氧化硅包覆的金纳米棒(AuNRs)上。该复合纳米探针在近红外区域呈现出强烈的吸收,并且在980 nm照射下,与纯RENCs相比,NIR-II光致发光(PL)增加了97.2至102倍。通过AuNRs的表面等离子体共振效应产生的局部电场呈现出与纳米探针结构一致的哑铃形分布,从而使RENCs的PL增强最大化。此外,NIR-II发射随温度升高而变化,基于PL寿命在338 K时具有7.25% K的出色相对灵敏度,表明该纳米探针在光学温度传感方面具有很高的潜力。