TY - JOUR
T1 - Ligand-mediated spatially controllable superassembly of asymmetric hollow nanotadpoles with fine-tunable cavity as smart H2O2-sensitive nanoswimmers
AU - Yan, Miao
AU - Xie, Lei
AU - Qiu, Beilei
AU - Zhou, Shan
AU - Liu, Tianyi
AU - Zeng, Jie
AU - Liang, Qirui
AU - Tang, Jinyao
AU - Liang, Kang
AU - Zhao, Dongyuan
AU - Kong, Biao
N1 - Funding Information:
This work was supported by the National Key Research and Development Program of China (2019YFC1604601, 2019YFC1604600, 2017YFA0206901, 2017YFA0206900, 2018YFC1602301), the National Natural Science Foundation of China (21705027, 21974029), the Natural Science Foundation of Shanghai (18ZR1404700), Construction Project of Shanghai Key Laboratory of Molecular Imaging (18DZ2260400), and Shanghai Municipal Education Commission (Class II Plateau Disciplinary Construction Program of Medical Technology of SUMHS, 2018-2020).
Publisher Copyright:
©
PY - 2021/7/27
Y1 - 2021/7/27
N2 - Ligand-mediated interface control has been broadly applied as a powerful tool in constructing sophisticated nanocomposites. However, the resultant morphologies are usually limited to solid structures. Now, a facile spatially controllable ligand-mediated superassembly strategy is explored to construct monodispersed, asymmetric, hollow, open Au-silica (SiO2) nanotadpoles (AHOASTs). By manipulating the spatial density of ligands, the degree of diffusion of silica can be precisely modulated; thus the diameters of the cavity can be continuously tuned. Due to their highly anisotropic, hollow, open morphologies, we construct a multicompartment nanocontainer with enzymes held and isolated inside the cavity. Furthermore, the resulting enzyme-AHOASTs are used as biocompatible smart H2O2-sensitive nanoswimmers and demonstrate a higher diffusion coefficient than other nanoscaled swimmers. We believe that this strategy is critical not only in designing sophisticated hollow nanosystem but also in providing great opportunities for applications in nanomaterial assembly, catalysis, sensors, and nanoreactors.
AB - Ligand-mediated interface control has been broadly applied as a powerful tool in constructing sophisticated nanocomposites. However, the resultant morphologies are usually limited to solid structures. Now, a facile spatially controllable ligand-mediated superassembly strategy is explored to construct monodispersed, asymmetric, hollow, open Au-silica (SiO2) nanotadpoles (AHOASTs). By manipulating the spatial density of ligands, the degree of diffusion of silica can be precisely modulated; thus the diameters of the cavity can be continuously tuned. Due to their highly anisotropic, hollow, open morphologies, we construct a multicompartment nanocontainer with enzymes held and isolated inside the cavity. Furthermore, the resulting enzyme-AHOASTs are used as biocompatible smart H2O2-sensitive nanoswimmers and demonstrate a higher diffusion coefficient than other nanoscaled swimmers. We believe that this strategy is critical not only in designing sophisticated hollow nanosystem but also in providing great opportunities for applications in nanomaterial assembly, catalysis, sensors, and nanoreactors.
KW - direct superassembly
KW - fine-tunable cavity
KW - HO-sensitive nanoswimmers
KW - ligand-mediated
KW - nanosynthesis
UR - https://www.scopus.com/pages/publications/85105095028
U2 - 10.1021/acsnano.1c01159
DO - 10.1021/acsnano.1c01159
M3 - Article
AN - SCOPUS:85105095028
SN - 1936-0851
VL - 15
SP - 11451
EP - 11460
JO - ACS Nano
JF - ACS Nano
IS - 7
ER -