Recent dramatic progress in studying various two-dimensional (2D) atomic crystals and their heterostructures calls for better and more detailed understanding of their crystallography, reconstruction, stacking order, <i>etc</i>. For this, direct imaging and identification of each and every atom is essential. Transmission electron microscopy (TEM) and scanning transmission electron microscopy (STEM) are ideal and perhaps the only tools for such studies. However, the electron beam can in some cases induce dramatic structure changes, and radiation damage becomes an obstacle in obtaining the desired information in imaging and chemical analysis in the (S)TEM. This is the case of 2D materials such as molybdenum disulfide MoS<sub>2</sub>, but also ...
In this work, we demonstrate the mechanism for etching exfoliated graphene on SiO2 and other technol...
Since the advent of monolayered 2D transition metal carbide and nitrides (MXenes) in 2011, the numbe...
Heterostructures of 2D materials are expected to become building blocks of next generation nanoelect...
Recent dramatic progress in studying various two-dimensional (2D) atomic crystals and their heterost...
Recent dramatic progress in studying various two-dimensional (2D) atomic crystals and their heterost...
Studying the atomic structure of intrinsic defects in two-dimensional transition-metal dichalcogenid...
We employ atomically resolved and element-specific scanning transmission electron microscopy (STEM) ...
© Atomic-scale information is essential for understanding and designing unique structures and proper...
Atomic-scale information is essential for understanding and designing unique structures and properti...
Studying the atomic structure of intrinsic defects in two-dimensional transition-metal dichalcogenid...
Studying the atomic structure of intrinsic defects in two-dimensional transition-metal dichalcogenid...
International audienceIn this work, we study growth and migration of atomic defects in MoSe 2 on gra...
International audienceIn this work, we study growth and migration of atomic defects in MoSe 2 on gra...
International audienceIn this work, we study growth and migration of atomic defects in MoSe 2 on gra...
Atomically resolved images of monolayer organic crystals have only been obtained with scanning probe...
In this work, we demonstrate the mechanism for etching exfoliated graphene on SiO2 and other technol...
Since the advent of monolayered 2D transition metal carbide and nitrides (MXenes) in 2011, the numbe...
Heterostructures of 2D materials are expected to become building blocks of next generation nanoelect...
Recent dramatic progress in studying various two-dimensional (2D) atomic crystals and their heterost...
Recent dramatic progress in studying various two-dimensional (2D) atomic crystals and their heterost...
Studying the atomic structure of intrinsic defects in two-dimensional transition-metal dichalcogenid...
We employ atomically resolved and element-specific scanning transmission electron microscopy (STEM) ...
© Atomic-scale information is essential for understanding and designing unique structures and proper...
Atomic-scale information is essential for understanding and designing unique structures and properti...
Studying the atomic structure of intrinsic defects in two-dimensional transition-metal dichalcogenid...
Studying the atomic structure of intrinsic defects in two-dimensional transition-metal dichalcogenid...
International audienceIn this work, we study growth and migration of atomic defects in MoSe 2 on gra...
International audienceIn this work, we study growth and migration of atomic defects in MoSe 2 on gra...
International audienceIn this work, we study growth and migration of atomic defects in MoSe 2 on gra...
Atomically resolved images of monolayer organic crystals have only been obtained with scanning probe...
In this work, we demonstrate the mechanism for etching exfoliated graphene on SiO2 and other technol...
Since the advent of monolayered 2D transition metal carbide and nitrides (MXenes) in 2011, the numbe...
Heterostructures of 2D materials are expected to become building blocks of next generation nanoelect...