The edges of 2D materials show novel electronic, magnetic, and optical properties, especially when reduced to nanoribbon widths. Therefore, methods to create atomically flat edges in 2D materials are essential for future exploitation. Atomically flat edges in 2D materials are found after brittle fracture or when electrically biasing, but a simple scalable approach for creating atomically flat periodic edges in monolayer 2D transition metal dichalcogenides has yet to be realized. Here, we show how heating monolayer MoS<sub>2</sub> to 800 °C in vacuum produces atomically flat Mo terminated zigzag edges in nanoribbons. We study this at the atomic level using an ultrastable in situ heating holder in an aberration-corrected transmission electron...
The remarkable properties of layered materials such as MoS2 strongly depend on their dimensionality....
Molybdenum disulfide nanoribbons with zigzag edges show ferromagnetic and metallic properties based ...
Magnetism arising from edge spins is highly interesting, particularly in 2D atomically thin material...
The edges of 2D materials show novel electronic, magnetic, and optical properties, especially when r...
The edges of 2D materials show novel electronic, magnetic, and optical properties, especially when r...
The edges of 2D materials show novel electronic, magnetic, and optical properties, especially when r...
Two-dimensional transition metal dichalcogenides represent an emerging class of layered materials ex...
Crystal symmetry of two-dimensional (2D) materials plays an important role in their electronic and o...
Recent progresses in the synthesis of large-area and stable atomically thin MoS(2)have evoked enormo...
Abstract Recent progresses in the synthesis of large-area and stable atomically thin MoS2 have evoke...
Recent progresses in the synthesis of large-area and stable atomically thin MoS(2)have evoked enormo...
Abstract Recent progresses in the synthesis of large-area and stable atomically thin MoS2 have evoke...
Recent progresses in the synthesis of large-area and stable atomically thin MoS(2)have evoked enormo...
Abstract Recent progresses in the synthesis of large-area and stable atomically thin MoS...
The ability to extract materials just a few atoms thick has led to the discoveries of graphene, mono...
The remarkable properties of layered materials such as MoS2 strongly depend on their dimensionality....
Molybdenum disulfide nanoribbons with zigzag edges show ferromagnetic and metallic properties based ...
Magnetism arising from edge spins is highly interesting, particularly in 2D atomically thin material...
The edges of 2D materials show novel electronic, magnetic, and optical properties, especially when r...
The edges of 2D materials show novel electronic, magnetic, and optical properties, especially when r...
The edges of 2D materials show novel electronic, magnetic, and optical properties, especially when r...
Two-dimensional transition metal dichalcogenides represent an emerging class of layered materials ex...
Crystal symmetry of two-dimensional (2D) materials plays an important role in their electronic and o...
Recent progresses in the synthesis of large-area and stable atomically thin MoS(2)have evoked enormo...
Abstract Recent progresses in the synthesis of large-area and stable atomically thin MoS2 have evoke...
Recent progresses in the synthesis of large-area and stable atomically thin MoS(2)have evoked enormo...
Abstract Recent progresses in the synthesis of large-area and stable atomically thin MoS2 have evoke...
Recent progresses in the synthesis of large-area and stable atomically thin MoS(2)have evoked enormo...
Abstract Recent progresses in the synthesis of large-area and stable atomically thin MoS...
The ability to extract materials just a few atoms thick has led to the discoveries of graphene, mono...
The remarkable properties of layered materials such as MoS2 strongly depend on their dimensionality....
Molybdenum disulfide nanoribbons with zigzag edges show ferromagnetic and metallic properties based ...
Magnetism arising from edge spins is highly interesting, particularly in 2D atomically thin material...