Institute of Nano Science and Technology, Knowledge City, Sector 81, Mohali 140306, India.
School of Materials Sciences, Indian Association for the Cultivation of Science, Kolkata 700032, India.
Phys Chem Chem Phys. 2023 Mar 29;25(13):9513-9521. doi: 10.1039/d2cp05120f.
Bimetallic nanoclusters (NCs) have emerged as a new class of luminescent materials for potential applications in sensing, bio-imaging, and light-emitting diodes (LEDs). Here, we have synthesized gold-copper bimetallic nanoclusters (AuCu NCs) using a one-step co-reduction method and tuned the emission wavelength from 520 nm to 620 nm by changing the [Cu]/[Au] molar ratio. The quantum yield (QY) increases from 6% to 13% upon incorporation of the Cu atom in the Au NCs. MALDI-TOF mass spectrometric analysis reveals that the composition of the Au NCs is Au(MPA), and the bimetallic nanocluster is AuCu(MPA), where 3-mercaptopropionic acid (MPA) is used as the capping ligand. Furthermore, we investigated the optimized structures of the as-synthesized NCs using density functional theory (DFT) along with analysis of the preferable adsorption sites using Fukui functions. We report the HOMO-LUMO gap, which is consistent with the experimentally observed red shift in the UV-Vis absorption features of the Au NCs upon copper doping. XPS studies suggest the formation of intermixing of states between the 5d orbitals of Au and the 3d orbitals of Cu in the AuCu NCs after incorporating Cu atoms into the Au NCs, which is corroborated by the DFT calculations on electronic charge transfer from the Cu to the Au atom in the NCs. The coupling between Au(I) and Cu(I) facilitates the formation of a low-lying mixed Au(I)-Cu(I) energy state. This study elaborates on the impact of Cu doping on the excited-state relaxation dynamics of AuCu NCs.
双金属纳米团簇(NCs)作为一类新型发光材料,在传感、生物成像和发光二极管(LEDs)等领域具有潜在的应用前景。在这里,我们使用一步共还原法合成了金铜双金属纳米团簇(AuCu NCs),通过改变[Cu]/[Au]摩尔比,将发射波长从 520nm 调谐至 620nm。在 Au NCs 中掺入 Cu 原子后,量子产率(QY)从 6%增加到 13%。MALDI-TOF 质谱分析表明,Au NCs 的组成为 Au(MPA),而双金属纳米团簇为 AuCu(MPA),其中 3-巯基丙酸(MPA)用作配体。此外,我们使用密度泛函理论(DFT)结合福井函数分析,研究了所合成 NCs 的优化结构。我们报告了 HOMO-LUMO 能隙,这与实验观察到的 Au NCs 在铜掺杂后紫外-可见吸收特征的红移一致。XPS 研究表明,在将 Cu 原子掺入 Au NCs 后,Au 和 Cu 的 5d 轨道与 3d 轨道之间形成了混合态,这与 NCs 中 Cu 原子向 Au 原子的电子转移的 DFT 计算结果一致。Au(I)和 Cu(I)之间的耦合促进了低能混合 Au(I)-Cu(I)态的形成。这项研究详细阐述了 Cu 掺杂对 AuCu NCs 激发态弛豫动力学的影响。