Recent findings on fundamental mechanisms of energy dissipation and conversion occurring on the surface and at interfaces is reviewed. The various energy dissipation mechanisms and detection schemes for hot electrons were also studied. Hot electron flows generated with a catalytic nanodiode provide insights into the role of electron excitation leading to energy conversion processes. It was found that hot electron flux is well correlated with the turnover rates of catalytic reactions, which suggests possible applications for chemical sensors and novel energy conversion. Together, these findings demonstrate the prevalence of surface ion chemistry across a wide range of heterogeneous reactions and catalyst systems and show that charge transfer...
Understanding the role of electronically nonadiabatic interactions during chemical reactions on meta...
Identifying the electronic behavior of metal-oxide interfaces is essential for understanding the ori...
Identifying the electronic behavior of metal-oxide interfaces is essential for understanding the ori...
© 2021 Elsevier B.V.Fundamental mechanisms for energy conversion and dissipation on surfaces and at ...
We review recent progress in studies of the nature of hot electrons generated in metal nanoparticles...
Conspectus Energy dissipation at surfaces and interfaces is mediated by excitation of elementary pro...
Understanding fundamental mechanisms for surface electronic excitation is of great importance in sur...
A pulse of high kinetic energy electrons can be generated after deposition of external energy to a m...
Understanding the fundamental mechanisms for charge transfer in supported catalysts is of great impo...
The development of catalytic nanodiodes to measure the flow of hot electrons generated at metal–oxid...
Hot electrons and surface-plasmon-driven chemistry are amongst the most actively studied research su...
A pulse of high kinetic energy electrons (1–3 eV) in metals can be generated after surface exposure ...
Fundamental understanding of energy dissipation on surfaces has been important issues for studying r...
Most nanocatalysts are composed of highly dispersed transition metal nanoparticles on oxides. The in...
The study of energy and charge transfer during chemical reactions on metals is of great importance f...
Understanding the role of electronically nonadiabatic interactions during chemical reactions on meta...
Identifying the electronic behavior of metal-oxide interfaces is essential for understanding the ori...
Identifying the electronic behavior of metal-oxide interfaces is essential for understanding the ori...
© 2021 Elsevier B.V.Fundamental mechanisms for energy conversion and dissipation on surfaces and at ...
We review recent progress in studies of the nature of hot electrons generated in metal nanoparticles...
Conspectus Energy dissipation at surfaces and interfaces is mediated by excitation of elementary pro...
Understanding fundamental mechanisms for surface electronic excitation is of great importance in sur...
A pulse of high kinetic energy electrons can be generated after deposition of external energy to a m...
Understanding the fundamental mechanisms for charge transfer in supported catalysts is of great impo...
The development of catalytic nanodiodes to measure the flow of hot electrons generated at metal–oxid...
Hot electrons and surface-plasmon-driven chemistry are amongst the most actively studied research su...
A pulse of high kinetic energy electrons (1–3 eV) in metals can be generated after surface exposure ...
Fundamental understanding of energy dissipation on surfaces has been important issues for studying r...
Most nanocatalysts are composed of highly dispersed transition metal nanoparticles on oxides. The in...
The study of energy and charge transfer during chemical reactions on metals is of great importance f...
Understanding the role of electronically nonadiabatic interactions during chemical reactions on meta...
Identifying the electronic behavior of metal-oxide interfaces is essential for understanding the ori...
Identifying the electronic behavior of metal-oxide interfaces is essential for understanding the ori...