Department of Physics , The Chinese University of Hong Kong , Shatin , Hong Kong SAR , China.
Acc Chem Res. 2019 Aug 20;52(8):2136-2146. doi: 10.1021/acs.accounts.9b00230. Epub 2019 Aug 1.
Gold nanobipyramids (Au NBPs) and gold nanorods (Au NRs) are two types of elongated plasmonic nanoparticles with their longitudinal dipolar plasmon wavelengths synthetically tunable from the visible region to the near-infrared region. Both have highly polarization-dependent absorption and scattering cross sections because of their anisotropic geometries. In terms of their differences, each Au NBP has five equally angularly separated twinning planes that are aligned parallel to the length direction, while the most common Au NRs are single-crystalline. As a result, Au NBPs possess two sharp end tips, while Au NRs have rounded or flat ends, resulting in very different plasmonic properties. In general, Au NBPs exhibit larger local electric field enhancements, larger optical cross sections, narrower line widths, better shape and size uniformity, and higher refractive index sensitivity than Au NRs. With the recent development of reliable methods for the growth of Au NBPs with high purity and uniformity, Au NBPs have been attracting much interest for the investigation of their intriguing plasmonic properties and applications. In this Account, we provide a concise introduction to Au NBPs, including their fascinating plasmonic properties, wet-chemistry growth methods, plasmonic applications, and structure-directing function. The synthesis of uniform Au NBPs with variable sizes is of vital importance to control their plasmonic properties. In the synthesis part, we summarize the recent developments on the synthesis of Au NBPs, with a focus on the role of seeds in the seed-mediated growth of pentatwinned Au NBPs and methods to improve their number purity. The excellent plasmonic properties of Au NBPs make them promising candidates for numerous applications. To further explore the largely improved functionalities of Au NBPs, different types of Au-NBP-based hybrid nanostructures have been prepared. They exhibit synergistic interactions between Au NBPs and the other components. We highlight the widespread plasmonic applications of Au NBPs and Au-NBP-based hybrid nanostructures in the fields of spectroscopy, photocatalysis, sensing, switching, and biomedical technologies. We next turn to the structure-directing function of Au NBPs to demonstrate the Au-NBP-directed growth of metal nanostructures and their applications. The structure-directing function is enabled by the unique pentatwinned crystalline structure of Au NBPs. Finally, we conclude with remarks on the future perspectives and research directions on Au NBPs as well as the remaining challenges. We hope that this Account will act as a platform to offer fascinating opportunities and stimulate fast-growing research on the various aspects of Au NBPs.
金纳米双锥(Au NBPs)和金纳米棒(Au NRs)是两种具有长径比的等离子体纳米粒子,其纵向偶极等离子体波长可从可见光区域到近红外区域进行合成调节。由于其各向异性的几何形状,它们都具有高度偏振相关的吸收和散射截面。就它们的差异而言,每个 Au NBP 都有五个等角分离的孪晶面,这些孪晶面与长度方向平行排列,而最常见的 Au NRs 是单晶的。因此,Au NBPs 具有两个尖锐的末端,而 Au NRs 具有圆形或平坦的末端,从而导致非常不同的等离子体性质。一般来说,Au NBPs 表现出更大的局部电场增强、更大的光学截面、更窄的线宽、更好的形状和尺寸均匀性以及更高的折射率灵敏度,优于 Au NRs。随着最近发展出可靠的高纯度和均匀性 Au NBPs 生长方法,Au NBPs 因其有趣的等离子体性质和应用而引起了广泛关注。在本综述中,我们提供了 Au NBPs 的简明介绍,包括它们迷人的等离子体性质、湿化学生长方法、等离子体应用以及结构导向功能。具有可变尺寸的均匀 Au NBPs 的合成对于控制其等离子体性质至关重要。在合成部分,我们总结了 Au NBPs 合成的最新进展,重点介绍了种子在五重孪 Au NBPs 种子介导生长中的作用,以及提高其数量纯度的方法。Au NBPs 的优异等离子体性质使它们成为许多应用的有前途的候选者。为了进一步探索 Au NBPs 功能的大幅改善,已经制备了不同类型的基于 Au-NBP 的杂化纳米结构。它们表现出 Au NBPs 与其他成分之间的协同相互作用。我们强调了 Au NBPs 和基于 Au-NBP 的杂化纳米结构在光谱学、光催化、传感、开关和生物医学技术等领域的广泛等离子体应用。接下来,我们转向 Au NBPs 的结构导向功能,以展示 Au-NBP 引导的金属纳米结构的生长及其应用。Au NBPs 的独特五重孪晶晶体结构使其具有结构导向功能。最后,我们对 Au NBPs 作为平台的未来展望和研究方向以及剩余的挑战进行了总结。我们希望本综述能够提供迷人的机会,并激发对 Au NBPs 各个方面的快速研究。