Plasmon-induced hot-carrier generation differences in gold and silver nanoclusters

被引:55
|
作者
Douglas-Gallardo, Oscar A. [1 ]
Berdakin, Matias [2 ,3 ]
Frauenheim, Thomas [4 ]
Sanchez, Cristian G. [5 ,6 ]
机构
[1] Univ Concepcion, Fac Ciencias Quim, Dept Fis Quim, Concepcion, Chile
[2] Univ Nacl Cordoba, CONICET, INFIQC, Cordoba, Argentina
[3] Univ Nacl Cordoba, Dept Quim Teor & Computac, Fac Ciencias Quim, Cordoba, Argentina
[4] Univ Bremen, Bremen Ctr Computat Mat Sci, Bremen, Germany
[5] Univ Nacl Cuyo, CONICET, Padre Jorge Contreras 1300, Mendoza, Argentina
[6] Univ Nacl Cuyo, Fac Ciencias Exactas & Nat, Padre Jorge Contreras 1300, Mendoza, Argentina
关键词
OPTICAL-PROPERTIES; INDUCED DISSOCIATION; SIZE-DEPENDENCE; NANOPARTICLES; SHAPE; ABSORPTION; ULTRAFAST; RESONANCE; DYNAMICS; NANOCRYSTALS;
D O I
10.1039/c9nr01352k
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In the last thirty years, the study of plasmonic properties of noble metal nanostructures has become a very dynamic research area. The design and manipulation of matter in the nanometric scale demands a deep understanding of the underlying physico-chemical processes that operate in this size regimen. Here, a fully atomistic study of the spectroscopic and photodynamic properties of different icosahedral silver and gold nanoclusters has been carried out by using a Time-Dependent Density Functional Tight-Binding (TD-DFTB) model. The optical absorption spectra of different icosahedral silver and gold nanoclusters of diameters between 1 and 4 nanometers have been simulated. Furthermore, the energy absorption process has been quantified by means of calculating a fully quantum absorption cross-section using the information contained in the reduced single-electron density matrix. This approach allows us take into account the quantum confinement effects dominating in this size regime. Likewise, the plasmon-induced hot-carrier generation process under laser illumination has been explored from a fully dynamical perspective. We have found noticeable differences in the energy absorption mechanisms and the plasmon-induced hot-carrier generation process in both metals which can be explained by their respective electronic structures. These differences can be attributed to the existence of ultra-fast electronic dissipation channels in gold nanoclusters that are absent in silver nanoclusters. To the best of our knowledge, this is the first report that addresses this topic from a real time fully atomistic time-dependent approach.
引用
收藏
页码:8604 / 8615
页数:12
相关论文
共 50 条
  • [1] Modeling Plasmon-Induced Hot-Carrier Transfer
    Li, Lesheng
    Kanai, Yosuke
    [J]. CHEM, 2018, 4 (05): : 937 - 939
  • [2] Interplay between Intra- and Interband Transitions Associated with the Plasmon-Induced Hot Carrier Generation Process in Silver and Gold Nanoclusters
    Berdakin, Matias
    Douglas-Gallardo, Oscar A.
    Sanchez, Cristian G.
    [J]. JOURNAL OF PHYSICAL CHEMISTRY C, 2020, 124 (02): : 1631 - 1639
  • [3] Plasmon-Induced Direct Hot-Carrier Transfer at Metal-Acceptor Interfaces
    Kumar, Priyank V.
    Rossi, Tuomas P.
    Marti-Dafcik, Daniel
    Reichmuth, Daniel
    Kuisma, Mikael
    Erhart, Paul
    Puska, Martti J.
    Norris, David J.
    [J]. ACS NANO, 2019, 13 (03) : 3188 - 3195
  • [4] Plasmon-induced nonlinear response on gold nanoclusters
    宋玉慧
    曹逸飞
    黄思晨
    李凯超
    杜如海
    严蕾
    付正坤
    张正龙
    [J]. Chinese Physics B, 2024, (04) : 305 - 308
  • [5] Plasmon-induced nonlinear response on gold nanoclusters
    Song, Yuhui
    Cao, Yifei
    Huang, Sichen
    Li, Kaichao
    Du, Ruhai
    Yan, Lei
    Fu, Zhengkun
    Zhang, Zhenglong
    [J]. CHINESE PHYSICS B, 2024, 33 (04)
  • [6] Plasmon-Induced Hot-Carrier Excited-State Dynamics in Plasmonic Semiconductor Nanocrystals
    Kuszynski, Jason E.
    Fabiano, Catherine J.
    Nguyen, Edward T.
    Mao, Keyou
    Ahuja, Anoushka K.
    Schaller, Richard D.
    Strouse, Geoffrey F.
    [J]. JOURNAL OF PHYSICAL CHEMISTRY C, 2023, 127 (46): : 22654 - 22661
  • [7] Plasmon-induced hot carrier science and technology
    Brongersma M.L.
    Halas N.J.
    Nordlander P.
    [J]. Nature Nanotechnology, 2015, 10 (1) : 25 - 34
  • [8] Plasmon-induced hot carrier science and technology
    Brongersma, Mark L.
    Halas, Naomi J.
    Nordlander, Peter
    [J]. NATURE NANOTECHNOLOGY, 2015, 10 (01) : 25 - 34
  • [9] Theoretical predictions for hot-carrier generation from surface plasmon decay
    Sundararaman, Ravishankar
    Narang, Prineha
    Jermyn, Adam S.
    Goddard, William A., III
    Atwater, Harry A.
    [J]. NATURE COMMUNICATIONS, 2014, 5
  • [10] Theoretical predictions for hot-carrier generation from surface plasmon decay
    Ravishankar Sundararaman
    Prineha Narang
    Adam S. Jermyn
    William A. Goddard III
    Harry A. Atwater
    [J]. Nature Communications, 5