Lighting up silicon nanoparticles with Mie resonances

Освещение кремниевых наночастиц с помощью резонансов Ми
Chengyun Zhang, Yi Xu, Jin Liu, Juntao Li, Jin Xiang, Hui Li, Jinxiang Li, Qiaofeng Dai, Sheng Lan, Andrey E. Miroshnichenko
2018-07-23

Mie resonanceshot-carrier dynamicsquantum efficiencysilicon nanoparticleswhite-light emission
Abstract As one of the most important semiconductors, silicon has been used to fabricate electronic devices, waveguides, detectors, solar cells, etc. However, the indirect bandgap and low quantum efficiency (10 −7 ) hinder the use of silicon for making good emitters. For integrated photonic circuits, silicon-based emitters with sizes in the range of 100−300 nm are highly desirable. Here, we show the use of the electric and magnetic resonances in silicon nanoparticles to enhance the quantum efficiency and demonstrate the white-light emission from silicon nanoparticles with feature sizes of ~200 nm. The magnetic and electric dipole resonances are employed to dramatically increase the relaxation time of hot carriers, while the magnetic and electric quadrupole resonances are utilized to reduce the radiative recombination lifetime of hot carriers. This strategy leads to an enhancement in the quantum efficiency of silicon nanoparticles by nearly five orders of magnitude as compared with bulk silicon, taking the three-photon-induced absorption into account.
1
Combining these resonances enhances silicon nanoparticle quantum efficiency by nearly five orders of magnitude compared with bulk silicon, including three-photon-induced absorption.
2
Electric and magnetic dipole resonances dramatically increase hot-carrier relaxation times in silicon nanoparticles.
3
Magnetic and electric quadrupole resonances reduce the radiative recombination lifetime of hot carriers.
4
Silicon nanoparticles approximately 200 nm in size produce white-light emission enabled by electric and magnetic Mie resonances.

~200 nm silicon nanoparticles

Mie-resonance-enhanced white-light emission and quantum efficiency, including hot-carrier relaxation and radiative recombination dynamics

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2018-07-23
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Chengyun Zhang
Yi Xu
Jin Liu
Juntao Li
Jin Xiang
Hui Li
Jinxiang Li
Qiaofeng Dai
Sheng Lan
Andrey E. Miroshnichenko
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