arXiv Analytics

Sign in

arXiv:1612.06365 [cond-mat.mes-hall]AbstractReferencesReviewsResources

Plasmonic Nanostars with Hot Spots for Efficient Generation of Hot Electrons under Solar Illumination

Xiang-Tian Kong, Zhiming Wang, Alexander O. Govorov

Published 2016-12-12Version 1

Nanostars (NSTs) are spiky nanocrystals with plasmonic hot spots. In this study, we show that strong electromagnetic fields localized in the nanostar tips are able to generate large numbers of energetic (hot) electrons, which can be used for photochemistry. To compute plasmonic nanocrystals with complex shapes, we develop a quantum approach based on the effect of surface generation of hot electrons. We then apply this approach to nanostars, nanorods and nanospheres. We found that that the plasmonic nanostars with multiple hot spots have the best characteristics for optical generation of hot electrons compared to the cases of nanorods and nanospheres. Generation of hot electrons is a quantum effect and appears due to the optical transitions near the surfaces of nanocrystals. The quantum properties of nanocrystals are strongly size- and material-dependent. In particular, the silver nanocrystals significantly overcome the case of gold for the quantum rates of hot-electron generation. Another important factor is the size of a nanocrystal. Small nanocrystals are more efficient for the hot-electron generation since they exhibit stronger quantum surface effects. The results of this study can useful for designing novel material systems for solar photocatalytic applications.

Comments: Main text: 28 pages, 7 figures; Supporting information: 8 pages, 6 figures, 2 tables
Related articles: Most relevant | Search more
arXiv:2411.14803 [cond-mat.mes-hall] (Published 2024-11-22)
Efficient Generation of Spin Currents in Altermagnets via Magnon Drag
arXiv:1601.02722 [cond-mat.mes-hall] (Published 2016-01-12)
Parametric amplification of plasmons and demons in 2D systems with hot electrons
arXiv:2209.03469 [cond-mat.mes-hall] (Published 2022-09-07)
Nonequilibrium Magnons from Hot Electrons in Antiferromagnetic Systems