等离子体子
去相
表面等离子共振
偶极子
材料科学
半导体
光电子学
共振(粒子物理)
物理
纳米技术
原子物理学
纳米颗粒
凝聚态物理
量子力学
作者
Jiangtian Li,Scott K. Cushing,Fanke Meng,Tess R. Senty,Alan D. Bristow,Nianqiang Wu
出处
期刊:Nature Photonics
[Nature Portfolio]
日期:2015-08-10
卷期号:9 (9): 601-607
被引量:668
标识
DOI:10.1038/nphoton.2015.142
摘要
In Forster resonance energy transfer (FRET), energy non-radiatively transfers from a blue-shifted emitter to a red-shifted absorber by dipole–dipole coupling. This study shows that plasmonics enables the opposite transfer direction, transferring the plasmonic energy towards the short-wavelength direction to induce charge separation in a semiconductor. Plasmon-induced resonance energy transfer (PIRET) differs from FRET because of the lack of a Stoke's shift, non-local absorption effects and a strong dependence on the plasmon's dephasing rate and dipole moment. PIRET non-radiatively transfers energy through an insulating spacer layer, which prevents interfacial charge recombination losses and dephasing of the plasmon from hot-electron transfer. The distance dependence of dipole–dipole coupling is mapped out for a range of detuning across the plasmon resonance. PIRET can efficiently harvest visible and near-infrared sunlight with energy below the semiconductor band edge to help overcome the constraints of band-edge energetics for single semiconductors in photoelectrochemical cells, photocatalysts and photovoltaics. Plasmon-induced resonance energy transfer is revealed and explored for solar energy harvesting from visible and near-infrared light.
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