We report a simple, versatile <i>in situ</i> transmission electron microscopy (TEM) approach for investigating the nucleation and growth mechanism of carbon nanotubes (CNTs), by which the composition, phase transition, and physical state of various catalysts can be clearly resolved. In our approach, catalyst nanoparticles (NPs) are placed in a multiwall CNT “tubular furnace” with two open ends, and a high temperature is obtained by Joule heating in the specimen chamber of a TEM. The carbon is supplied by electron irradiation-induced injection of carbon atoms. Comparative studies on the catalytic behavior of traditional iron oxide and recently discovered gold catalysts were performed. It was found that the growth of CNTs from iron oxide invo...
The evolution of a continuous Fe(NO3)3 catalyst film was observed by in situ annealing in a transmis...
The evolution of a continuous Fe(NO3)3 catalyst film was observed by in situ annealing in a transmis...
Revealing the active phase and structure of catalyst nanoparticles (NPs) is crucial for understandin...
We report a simple, versatile <i>in situ</i> transmission electron microscopy (TEM) approach for inv...
We report a simple, versatile <i>in situ</i> transmission electron microscopy (TEM) approach for inv...
We report a simple, versatile <i>in situ</i> transmission electron microscopy (TEM) approach for inv...
We report a simple, versatile in situ transmission electron microscopy (TEM) approach for investigat...
International audienceElucidating the evolution of bimetallic catalyst for nucleating carbon nanotub...
We study the Fe-catalyzed chemical vapor deposition of carbon nanotubes by complementary in situ gra...
Carbon nanotubes (CNTs) are materials with significant potential applications due to their desirable...
ABSTRACT: We study the Fe-catalyzed chemical vapor deposition of carbon nanotubes by complementary i...
Understanding the growth mechanism of carbon nanotubes (CNTs) has been long pursued since its discov...
We study the Fe-catalyzed chemical vapor deposition of carbon nanotubes by complementary in situ gra...
The nucleation and growth of carbon nanotubes (CNTs) occurs through a vapor-liquid-solid (VLS) mecha...
An understanding of the growth mechanism of carbon nanotubes (CNTs) is very important for the contro...
The evolution of a continuous Fe(NO3)3 catalyst film was observed by in situ annealing in a transmis...
The evolution of a continuous Fe(NO3)3 catalyst film was observed by in situ annealing in a transmis...
Revealing the active phase and structure of catalyst nanoparticles (NPs) is crucial for understandin...
We report a simple, versatile <i>in situ</i> transmission electron microscopy (TEM) approach for inv...
We report a simple, versatile <i>in situ</i> transmission electron microscopy (TEM) approach for inv...
We report a simple, versatile <i>in situ</i> transmission electron microscopy (TEM) approach for inv...
We report a simple, versatile in situ transmission electron microscopy (TEM) approach for investigat...
International audienceElucidating the evolution of bimetallic catalyst for nucleating carbon nanotub...
We study the Fe-catalyzed chemical vapor deposition of carbon nanotubes by complementary in situ gra...
Carbon nanotubes (CNTs) are materials with significant potential applications due to their desirable...
ABSTRACT: We study the Fe-catalyzed chemical vapor deposition of carbon nanotubes by complementary i...
Understanding the growth mechanism of carbon nanotubes (CNTs) has been long pursued since its discov...
We study the Fe-catalyzed chemical vapor deposition of carbon nanotubes by complementary in situ gra...
The nucleation and growth of carbon nanotubes (CNTs) occurs through a vapor-liquid-solid (VLS) mecha...
An understanding of the growth mechanism of carbon nanotubes (CNTs) is very important for the contro...
The evolution of a continuous Fe(NO3)3 catalyst film was observed by in situ annealing in a transmis...
The evolution of a continuous Fe(NO3)3 catalyst film was observed by in situ annealing in a transmis...
Revealing the active phase and structure of catalyst nanoparticles (NPs) is crucial for understandin...