TY - JOUR
T1 - Ultrasmall, well-dispersed, hollow siliceous spheres with enhanced endocytosis properties
AU - Zhu, Jie
AU - Tang, Jiawei
AU - Zhao, Lingzhi
AU - Zhou, Xufeng
AU - Wang, Yunhua
AU - Yu, Chengzhong
PY - 2010/1/18
Y1 - 2010/1/18
N2 - The synthesis of ultrasmall, well-dispersed, hollow siliceous spheres (HSSs) by using a block copolymer as the template and tetraethoxysilane as a silica source under acidic conditions is reported. After removing the surfactant core of as-synthesized, spherical, silica-coated block-copolymer micelles, HSSs with a uniform particle size of 24.7nm, a cavity diameter of 11.7 nm, and a wall thickness of 6.5 nm are obtained. It is shown that by surface functionalization of HSSs with methyl groups during synthesis, HSSs can be further dispersed in solvents such as water or ethanol to form a stable sol. Moreover, the hollow cavities are accessible for further loading of functional components. In addition, it is demonstrated that HSSs possess superior endocytosis properties for HeLa cells compared to those of conventional mesoporous silica nano particles. A feasible and designable strategy for synthesizing novel well-dispersed hollow structures with ultrasmall diameters instead of conventional ordered mesostructures is provided. It is expected that HSSs may find broad applications in bionanotechnology, such as drug carriers, cell imaging, and targeted therapy.
AB - The synthesis of ultrasmall, well-dispersed, hollow siliceous spheres (HSSs) by using a block copolymer as the template and tetraethoxysilane as a silica source under acidic conditions is reported. After removing the surfactant core of as-synthesized, spherical, silica-coated block-copolymer micelles, HSSs with a uniform particle size of 24.7nm, a cavity diameter of 11.7 nm, and a wall thickness of 6.5 nm are obtained. It is shown that by surface functionalization of HSSs with methyl groups during synthesis, HSSs can be further dispersed in solvents such as water or ethanol to form a stable sol. Moreover, the hollow cavities are accessible for further loading of functional components. In addition, it is demonstrated that HSSs possess superior endocytosis properties for HeLa cells compared to those of conventional mesoporous silica nano particles. A feasible and designable strategy for synthesizing novel well-dispersed hollow structures with ultrasmall diameters instead of conventional ordered mesostructures is provided. It is expected that HSSs may find broad applications in bionanotechnology, such as drug carriers, cell imaging, and targeted therapy.
KW - Block copolymers
KW - Endocytosis
KW - Hollow sphere materials
KW - Mesoporo us materials
KW - Nanoparticles
UR - https://www.scopus.com/pages/publications/76749158029
U2 - 10.1002/smll.200901631
DO - 10.1002/smll.200901631
M3 - 文章
C2 - 19943256
AN - SCOPUS:76749158029
SN - 1613-6810
VL - 6
SP - 276
EP - 282
JO - Small
JF - Small
IS - 2
ER -