Energy dissipation at metal surfaces or interfaces between a metal and a dielectric generally results from elementary excitations, including phonons and electronic excitation, once external energy is deposited to the surface/interface during exothermic chemical processes or an electromagnetic wave incident. In this paper, we outline recent research activities to develop energy conversion devices based on hot electrons. We found that photon energy can be directly converted to hot electrons and that hot electrons flow through the interface of metal-semiconductor nanodiodes where a Schottky barrier is formed and the energy barrier is much lower than the work function of the metal. The detection of hot electron flow can be successfully measured...
Collection of hot electrons generated by the efficient absorption of light in metallic nanostructure...
Thesis: S.M., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2017.Cata...
The use of surface plasmons, charge density oscillations of conduction electrons of metallic nanostr...
Hot electron flux, generated by both incident light energy and the heat of the catalytic reaction, i...
Conspectus Energy dissipation at surfaces and interfaces is mediated by excitation of elementary pro...
A pulse of high kinetic energy electrons (1–3 eV) in metals can be generated after surface exposure ...
Energy conversion from light to electricity mediated by hot electrons in a plasmonic metal nanostruc...
© 2021 Elsevier B.V.Fundamental mechanisms for energy conversion and dissipation on surfaces and at ...
© The Royal Society of Chemistry.The use of metal nanoparticles, including Au, Ag, Cu, and Al, can i...
Energy conversion from light to electricity mediated by hot electrons in a plasmonic metal nanostruc...
Cataloged from PDF version of thesis.Includes bibliographical references (leaves 93-101).Thesis (Ph....
A pulse of high kinetic energy electrons can be generated after deposition of external energy to a m...
When an incident electromagnetic wave at optical frequencies couples to a metallic nanostructure, it...
The enhancement of hot electron generation using plasmonic nanostructures is a promising strategy fo...
Fundamental understanding of energy dissipation on surfaces has been important issues for studying r...
Collection of hot electrons generated by the efficient absorption of light in metallic nanostructure...
Thesis: S.M., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2017.Cata...
The use of surface plasmons, charge density oscillations of conduction electrons of metallic nanostr...
Hot electron flux, generated by both incident light energy and the heat of the catalytic reaction, i...
Conspectus Energy dissipation at surfaces and interfaces is mediated by excitation of elementary pro...
A pulse of high kinetic energy electrons (1–3 eV) in metals can be generated after surface exposure ...
Energy conversion from light to electricity mediated by hot electrons in a plasmonic metal nanostruc...
© 2021 Elsevier B.V.Fundamental mechanisms for energy conversion and dissipation on surfaces and at ...
© The Royal Society of Chemistry.The use of metal nanoparticles, including Au, Ag, Cu, and Al, can i...
Energy conversion from light to electricity mediated by hot electrons in a plasmonic metal nanostruc...
Cataloged from PDF version of thesis.Includes bibliographical references (leaves 93-101).Thesis (Ph....
A pulse of high kinetic energy electrons can be generated after deposition of external energy to a m...
When an incident electromagnetic wave at optical frequencies couples to a metallic nanostructure, it...
The enhancement of hot electron generation using plasmonic nanostructures is a promising strategy fo...
Fundamental understanding of energy dissipation on surfaces has been important issues for studying r...
Collection of hot electrons generated by the efficient absorption of light in metallic nanostructure...
Thesis: S.M., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2017.Cata...
The use of surface plasmons, charge density oscillations of conduction electrons of metallic nanostr...