Energy Harvest-Storage Research Center (EHSRC), University of Ulsan, 93 Daehak-ro, Nam-gu, Ulsan 44610, Republic of Korea.
J Chem Phys. 2022 Jul 7;157(1):014702. doi: 10.1063/5.0097220.
Oxygen plasma treatment is commonly used to sterilize gold nanoparticles by removing chemical contaminants from their surface while simultaneously inducing surface activation and functionalization of nanoparticles for biological, electrocatalytic, or electrochemical studies. In this study, we investigate the influence of oxygen plasma treatment on structural and localized surface plasmon resonance (LSPR) spectral changes of anisotropic gold nanorods (AuNRs) immobilized on an indium tin oxide (ITO) glass substrate. Unlike AuNRs deposited on a glass slide, no noticeable structural change or deformation of AuNRs on ITO was observed while increasing the oxygen plasma treatment time. This result indicates that ITO provides structural stability to AuNRs immobilized on its surface. Additionally, single-particle scattering spectra of AuNRs showed the broadening of LSPR linewidth within 60 s of oxygen plasma treatment as a result of the plasmon energy loss contributed from plasmon damping to ITO due to the removal of capping material from the AuNR surface. Nevertheless, an increase in the surface charge on the AuNR surface was observed by narrowing the LSPR linewidth after 180 s of plasma treatment. The electrochemical study of AuNRs immobilized on ITO electrodes revealed the surface activation and functionalization of AuNRs by increasing plasma treatment. Hence, in this study, a significant understanding of oxygen plasma treatment on AuNRs immobilized on ITO surfaces is provided.
氧气等离子体处理通常用于通过去除金纳米粒子表面的化学污染物,同时对纳米粒子进行表面活化和功能化,以用于生物、电催化或电化学研究,从而对金纳米粒子进行杀菌。在这项研究中,我们研究了氧气等离子体处理对在氧化铟锡(ITO)玻璃基底上固定的各向异性金纳米棒(AuNRs)的结构和局域表面等离子体共振(LSPR)光谱变化的影响。与沉积在玻璃载玻片上的 AuNRs 不同,在增加氧气等离子体处理时间时,在 ITO 上固定的 AuNRs 没有观察到明显的结构变化或变形。这一结果表明,ITO 为固定在其表面上的 AuNRs 提供了结构稳定性。此外,AuNRs 的单颗粒散射光谱显示,在 60 秒的氧气等离子体处理内,LSPR 线宽变宽,这是由于等离子体能量损失导致的,原因是等离子体阻尼到 ITO,导致 AuNR 表面的覆盖材料被去除。然而,在等离子体处理 180 秒后,通过缩小 LSPR 线宽观察到 AuNR 表面的表面电荷增加。在固定在 ITO 电极上的 AuNRs 的电化学研究中,发现通过增加等离子体处理实现了 AuNRs 的表面活化和功能化。因此,在这项研究中,提供了对氧气等离子体处理固定在 ITO 表面上的 AuNRs 的深入了解。