Literature DB >> 30768238

Plasmon-Induced Direct Hot-Carrier Transfer at Metal-Acceptor Interfaces.

Priyank V Kumar1, Tuomas P Rossi2,3, Daniel Marti-Dafcik1, Daniel Reichmuth1, Mikael Kuisma4, Paul Erhart2, Martti J Puska3, David J Norris1.   

Abstract

Plasmon-induced hot-carrier transfer from a metal nanostructure to an acceptor is known to occur via two key mechanisms: (i) indirect transfer, where the hot carriers are produced in the metal nanostructure and subsequently transferred to the acceptor, and (ii) direct transfer, where the plasmons decay by directly exciting carriers from the metal to the acceptor. Unfortunately, an atomic-level understanding of the direct-transfer process, especially with regard to its quantification, remains elusive even though it is estimated to be more efficient compared to the indirect-transfer process. This is due to experimental challenges in separating direct from indirect transfer as both processes occur simultaneously at femtosecond time scales. Here, we employ time-dependent density-functional theory simulations to isolate and study the direct-transfer process at a model metal-acceptor (Ag147-Cd33Se33) interface. Our simulations show that, for a 10 fs Gaussian laser pulse tuned to the plasmon frequency, the plasmon formed in the Ag147-Cd33Se33 system decays within 10 fs and induces the direct transfer with a probability of about 40%. We decompose the direct-transfer process further and demonstrate that the direct injection of both electrons and holes into the acceptor, termed direct hot-electron transfer (DHET) and direct hot-hole transfer (DHHT), takes place with similar probabilities of about 20% each. Finally, effective strategies to control and tune the probabilities of DHET and DHHT processes are proposed. We envision our work to provide guidelines toward the design of metal-acceptor interfaces that enable more efficient plasmonic hot-carrier devices.

Entities:  

Keywords:  direct transfer; hot electrons; hot holes; plasmon decay; time-dependent density-functional theory

Year:  2019        PMID: 30768238     DOI: 10.1021/acsnano.8b08703

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  4 in total

Review 1.  Hybrid Plasmonic Nanomaterials for Hydrogen Generation and Carbon Dioxide Reduction.

Authors:  Simone Ezendam; Matias Herran; Lin Nan; Christoph Gruber; Yicui Kang; Franz Gröbmeyer; Rui Lin; Julian Gargiulo; Ana Sousa-Castillo; Emiliano Cortés
Journal:  ACS Energy Lett       Date:  2022-01-24       Impact factor: 23.101

2.  Local Growth Mediated by Plasmonic Hot Carriers: Chirality from Achiral Nanocrystals Using Circularly Polarized Light.

Authors:  Lucas V Besteiro; Artur Movsesyan; Oscar Ávalos-Ovando; Seunghoon Lee; Emiliano Cortés; Miguel A Correa-Duarte; Zhiming M Wang; Alexander O Govorov
Journal:  Nano Lett       Date:  2021-12-03       Impact factor: 11.189

3.  Indirect to Direct Charge Transfer Transition in Plasmon-Enabled CO2 Photoreduction.

Authors:  Yimin Zhang; Lei Yan; Mengxue Guan; Daqiang Chen; Zhe Xu; Haizhong Guo; Shiqi Hu; Shengjie Zhang; Xinbao Liu; Zhengxiao Guo; Shunfang Li; Sheng Meng
Journal:  Adv Sci (Weinh)       Date:  2021-11-12       Impact factor: 16.806

4.  Direct Plasmonic Solar Cell Efficiency Dependence on Spiro-OMeTAD Li-TFSI Content.

Authors:  Xinjian Geng; Mohamed Abdellah; Robert Bericat Vadell; Matilda Folkenant; Tomas Edvinsson; Jacinto Sá
Journal:  Nanomaterials (Basel)       Date:  2021-12-08       Impact factor: 5.076

  4 in total

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