Single-molecule electronics is a sub-field of nanoelectronics in which individual devices are formed from single molecules placed between source and drain electrodes. During the past few years, scientists have demonstrated that the flow of electricity through these devices is controlled by quantum interference (QI) between electrons passing from source to drain. Their future development, however, is hampered by difficulties in controlling interference effects. Herein, we demonstrate that electron transport in tetracationic cyclophane circuits is mediated by QI between channels formed from two lowest unoccupied molecular orbitals (LUMOs), while their highest occupied molecular orbitals (HOMOs) play no significant role. Energy differences bet...
To rival the performance of modern integrated circuits, single-molecule devices must be designed to ...
Assembling and prototyping multiple circuits on a common breadboard scaffold is critical for develop...
This Concept article will give a glimpse into chemical design principles for exploiting quantum inte...
Single-molecule electronics is a sub-field of nanoelectronics in which individual devices are formed...
Abstract: Quantum interference (QI) plays a crucial role in determining the charge transport in mole...
We investigate through atomistic calculation the electronic structure and transport properties of 3-...
Recent observations of destructive quantum interference in single-molecule junctions confirm the rol...
Together with the more intuitive and commonly recognized conductance mechanisms of charge-hopping an...
This tutorial outlines the basic theoretical concepts and tools which underpin the fundamentals of p...
Interference effects on charge transport through an individual molecule can lead to a notable modula...
Controlling the electrical conductance and in particular the occurrence of quantum interference in s...
Controlling charge transport through molecular wires by utilizing quantum interference (QI) is a gro...
Together with the more intuitive and commonly recognized conductance mechanisms of charge-hopping an...
A quantum circuit rule for combining quantum interference effects in the conductive properties of ol...
This thesis explores electron transport across single-molecule circuits via a combination of theory ...
To rival the performance of modern integrated circuits, single-molecule devices must be designed to ...
Assembling and prototyping multiple circuits on a common breadboard scaffold is critical for develop...
This Concept article will give a glimpse into chemical design principles for exploiting quantum inte...
Single-molecule electronics is a sub-field of nanoelectronics in which individual devices are formed...
Abstract: Quantum interference (QI) plays a crucial role in determining the charge transport in mole...
We investigate through atomistic calculation the electronic structure and transport properties of 3-...
Recent observations of destructive quantum interference in single-molecule junctions confirm the rol...
Together with the more intuitive and commonly recognized conductance mechanisms of charge-hopping an...
This tutorial outlines the basic theoretical concepts and tools which underpin the fundamentals of p...
Interference effects on charge transport through an individual molecule can lead to a notable modula...
Controlling the electrical conductance and in particular the occurrence of quantum interference in s...
Controlling charge transport through molecular wires by utilizing quantum interference (QI) is a gro...
Together with the more intuitive and commonly recognized conductance mechanisms of charge-hopping an...
A quantum circuit rule for combining quantum interference effects in the conductive properties of ol...
This thesis explores electron transport across single-molecule circuits via a combination of theory ...
To rival the performance of modern integrated circuits, single-molecule devices must be designed to ...
Assembling and prototyping multiple circuits on a common breadboard scaffold is critical for develop...
This Concept article will give a glimpse into chemical design principles for exploiting quantum inte...