Luo Jiangshan, Shen Junjian, Cheng Xingwen, Liu Yan, Yin Xiulian, Hu Tianxi, Fan Guangxin, Zhang Jianming, Zheng Wei, Chen Xueyuan
Institute of Quantum and Sustainable Technology (IQST), School of Chemistry and Chemical Engineering, Jiangsu University Zhenjiang Jiangsu 212013 China
School of the Environment and Safety Engineering, Jiangsu University Zhenjiang Jiangsu 212013 China.
Chem Sci. 2025 Apr 10;16(20):8820-8826. doi: 10.1039/d5sc00937e. eCollection 2025 May 21.
A broad spectrum of optical nanomaterials, including organic molecules, quantum dots, and metallic nanoparticles, has attracted great attention in fields such as biological imaging, data storage, solid-state lasers and solar energy conversion owing to their nonlinear optical properties facilitated by the two-photon absorption process. However, their nonlinear optical properties, particularly photon upconversion triggered using near-infrared light, are constrained by a limited multiphoton absorption cross-section, requiring a costly pulsed laser with high-density excitation. Herein, we present a straightforward and versatile strategy to enhance upconversion luminescence in various optical nanomaterials sensitization with lanthanide-doped nanoparticles. This approach not only broadens the near-infrared responsivity of these luminescent nanomaterials but also introduces novel emission profiles to lanthanide-doped nanoparticles, enabling multidimensional tunability in terms of wavelength, lifetime, and polarization under low-density excitation. Concentration-dependent photoluminescence spectra and decay curves reveal a radiative energy transfer upconversion mechanism. These findings provide a general strategy for controlling photon upconversion in a wide range of luminescent nanomaterials, paving the way for innovative and versatile applications in diverse fields.
包括有机分子、量子点和金属纳米粒子在内的多种光学纳米材料,由于其通过双光子吸收过程促进的非线性光学性质,在生物成像、数据存储、固态激光器和太阳能转换等领域引起了极大关注。然而,它们的非线性光学性质,特别是利用近红外光触发的光子上转换,受到有限的多光子吸收截面的限制,需要昂贵的高密激发脉冲激光器。在此,我们提出了一种直接且通用的策略,通过掺杂镧系元素的纳米粒子敏化来增强各种光学纳米材料中的上转换发光。这种方法不仅拓宽了这些发光纳米材料的近红外响应度,还为掺杂镧系元素的纳米粒子引入了新的发射光谱,在低密度激发下实现了波长、寿命和偏振方面的多维可调性。浓度依赖的光致发光光谱和衰减曲线揭示了一种辐射能量转移上转换机制。这些发现为控制广泛的发光纳米材料中的光子上转换提供了一种通用策略,为不同领域的创新和多功能应用铺平了道路。