TY - JOUR
T1 - Dynamic and quantitative control of the DNA-mediated growth of gold plasmonic nanostructures
AU - Shen, Jianlei
AU - Xu, Lifeng
AU - Wang, Chunpeng
AU - Pei, Hao
AU - Tai, Renzhong
AU - Song, Shiping
AU - Huang, Qing
AU - Fan, Chunhai
AU - Chen, Gang
PY - 2014/8/4
Y1 - 2014/8/4
N2 - Reproducible and controllable growth of nanostructures with well-defined physical and chemical properties is a longstanding problem in nanoscience. A key step to address this issue is to understand their underlying growth mechanism, which is often entangled in the complexity of growth environments and obscured by rapid reaction speeds. Herein, we demonstrate that the evolution of size, surface morphology, and the optical properties of gold plasmonic nanostructures could be quantitatively intercepted by dynamic and stoichiometric control of the DNA-mediated growth. By combining synchrotron-based small-angle X-ray scattering (SAXS) with transmission electron microscopy (TEM), we reliably obtained quantitative structural parameters for these fine nanostructures that correlate well with their optical properties as identified by UV/Vis absorption and dark-field scattering spectroscopy. Through this comprehensive study, we report a growth mechanism for gold plasmonic nanostructures, and the first semiquantitative revelation of the remarkable interplay between their morphology and unique plasmonic properties.
AB - Reproducible and controllable growth of nanostructures with well-defined physical and chemical properties is a longstanding problem in nanoscience. A key step to address this issue is to understand their underlying growth mechanism, which is often entangled in the complexity of growth environments and obscured by rapid reaction speeds. Herein, we demonstrate that the evolution of size, surface morphology, and the optical properties of gold plasmonic nanostructures could be quantitatively intercepted by dynamic and stoichiometric control of the DNA-mediated growth. By combining synchrotron-based small-angle X-ray scattering (SAXS) with transmission electron microscopy (TEM), we reliably obtained quantitative structural parameters for these fine nanostructures that correlate well with their optical properties as identified by UV/Vis absorption and dark-field scattering spectroscopy. Through this comprehensive study, we report a growth mechanism for gold plasmonic nanostructures, and the first semiquantitative revelation of the remarkable interplay between their morphology and unique plasmonic properties.
KW - DNA
KW - electron microscopy
KW - gold nanoparticles
KW - small-angle X-ray scattering
KW - surface-enhanced Raman scattering
UR - https://www.scopus.com/pages/publications/84905453829
U2 - 10.1002/anie.201402937
DO - 10.1002/anie.201402937
M3 - 文章
C2 - 24954711
AN - SCOPUS:84905453829
SN - 1433-7851
VL - 53
SP - 8338
EP - 8342
JO - Angewandte Chemie - International Edition
JF - Angewandte Chemie - International Edition
IS - 32
ER -