AbstractFriction plays a critical role in the function and maintenance of small-scale structures, where the conventional Coulomb friction law often fails. To probe the friction at small scales, here we present a molecular dynamics study on the process of dragging graphene nanoribbons on waved graphene substrates. The simulation shows that the induced friction on graphene with zero waviness is ultra-low and closely related to the surface energy barrier. On waved graphenes, the friction generally increases with the amplitude of the wave at a fixed period, but anomalously increases and then decreases with the period at a fixed amplitude. These findings provide insights into the ultra-low friction at small scales, as well as some guidelines int...
Friction-induced energy dissipation impedes the performance of nanomechanical devices. Nevertheless,...
Friction-induced energy dissipation impedes the performance of nanomechanical devices. Nevertheless,...
In the process of graphene nanoribbons’ (GNRs) preparation and measurement, mechanical methods such ...
The frictional motion of contacting bodies is an ubiquitous phenomenon in physics. It encompasses a ...
Graphene nanoribbons (GNRs) physisorbed on a Au(111) surface can be picked up, lifted at one end, an...
Abstract In this paper, we investigate the friction behaviors of graphene flakes sliding on a gold s...
Atomically thin graphene is an ideal model system for studying nanoscale friction due to its intrins...
Nanoscale friction often exhibits hysteresis when load is increased (loading) and then decreased (un...
Recently, the tribological properties of graphene have been intensively examined for potential appli...
Friction-induced energy dissipation impedes the performance of nanomechanical devices. Nevertheless,...
The ultralow friction of two-dimensional (2D) materials, commonly referred to as superlubricity, has...
Friction-induced energy dissipation impedes the performance of nanomechanical devices. Nevertheless,...
Friction-induced energy dissipation impedes the performance of nanomechanical devices. Nevertheless,...
Ultralow friction can be achieved with 2D materials, particularly graphene and MoS2. The nanotribolo...
Friction-induced energy dissipation impedes the performance of nanomechanical devices. Nevertheless,...
Friction-induced energy dissipation impedes the performance of nanomechanical devices. Nevertheless,...
Friction-induced energy dissipation impedes the performance of nanomechanical devices. Nevertheless,...
In the process of graphene nanoribbons’ (GNRs) preparation and measurement, mechanical methods such ...
The frictional motion of contacting bodies is an ubiquitous phenomenon in physics. It encompasses a ...
Graphene nanoribbons (GNRs) physisorbed on a Au(111) surface can be picked up, lifted at one end, an...
Abstract In this paper, we investigate the friction behaviors of graphene flakes sliding on a gold s...
Atomically thin graphene is an ideal model system for studying nanoscale friction due to its intrins...
Nanoscale friction often exhibits hysteresis when load is increased (loading) and then decreased (un...
Recently, the tribological properties of graphene have been intensively examined for potential appli...
Friction-induced energy dissipation impedes the performance of nanomechanical devices. Nevertheless,...
The ultralow friction of two-dimensional (2D) materials, commonly referred to as superlubricity, has...
Friction-induced energy dissipation impedes the performance of nanomechanical devices. Nevertheless,...
Friction-induced energy dissipation impedes the performance of nanomechanical devices. Nevertheless,...
Ultralow friction can be achieved with 2D materials, particularly graphene and MoS2. The nanotribolo...
Friction-induced energy dissipation impedes the performance of nanomechanical devices. Nevertheless,...
Friction-induced energy dissipation impedes the performance of nanomechanical devices. Nevertheless,...
Friction-induced energy dissipation impedes the performance of nanomechanical devices. Nevertheless,...
In the process of graphene nanoribbons’ (GNRs) preparation and measurement, mechanical methods such ...