Department of Mechanical Engineering, Stanford University, Stanford, California 94305, United States.
Department of Chemistry, Northwestern University, Evanston, Illinois 60208, United States.
ACS Nano. 2021 Oct 26;15(10):16095-16105. doi: 10.1021/acsnano.1c04759. Epub 2021 Oct 6.
Gold nanoclusters with near-infrared (NIR) photoluminescence (PL) have great potential as sensing and imaging materials in biomedical and bioimaging applications. In this work, Au(SAdm) and AuS(SAdm) are used to unravel the underlying mechanisms for the improved quantum yields (QY), large Stokes shifts, and long PL lifetimes in gold nanoclusters. Both nanoclusters show decent PL QY. In particular, the AuS(SAdm) nanocluster shows a bright NIR PL at 900 nm with QY up to 15% in normal solvents (such as toluene) at ambient conditions. The relatively lower QY for Au(SAdm) (4%) compared to that of AuS(SAdm) is attributed to the lowest-lying excited state being symmetry-disallowed, as evidenced by the pressure-dependent antispectral shift of the absorption spectra compared to PL, yet Au(SAdm) maintains some emissive properties due to a nearby symmetry-allowed excited state. Furthermore, our results show that suppression of nonradiative decay due to the surface "lock rings", which encircle the Au kernel and the surface "lock atoms" which bridge the fundamental Au kernel units (e.g., tetrahedra, icosahedra, etc.), is the key to obtaining high QYs in gold nanoclusters. The complicated excited-state processes and the small absorption coefficient of the band-edge transition lead to the large Stokes shifts and the long PL lifetimes that are widely observed in gold nanoclusters.
具有近红外(NIR)光致发光(PL)的金纳米簇在生物医学和生物成像应用中作为传感和成像材料具有巨大的潜力。在这项工作中,Au(SAdm) 和 AuS(SAdm) 被用于揭示金纳米簇中量子产率(QY)提高、大斯托克斯位移和长 PL 寿命的潜在机制。这两种纳米簇都表现出相当高的 PL QY。特别是,AuS(SAdm) 纳米簇在环境条件下在正常溶剂(如甲苯)中在 900nm 处显示出明亮的近红外 PL,QY 高达 15%。与 AuS(SAdm) 相比,Au(SAdm) 的相对较低 QY(4%)归因于最低激发态是对称性禁止的,这可以通过与 PL 相比,吸收光谱的压力相关反光谱位移来证明,但由于附近允许的激发态,Au(SAdm) 保持了一些发光性质。此外,我们的结果表明,由于表面“锁定环”抑制非辐射衰减,这些环围绕着 Au 核和表面“锁定原子”(例如,四面体、二十面体等)桥接基本的 Au 核单元,是在金纳米簇中获得高 QY 的关键。复杂的激发态过程和带边跃迁的小吸收系数导致广泛观察到的金纳米簇中的大斯托克斯位移和长 PL 寿命。