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Ren-Min Ma

Researcher at Peking University

Publications -  115
Citations -  9606

Ren-Min Ma is an academic researcher from Peking University. The author has contributed to research in topics: Plasmon & Laser. The author has an hindex of 34, co-authored 113 publications receiving 8191 citations. Previous affiliations of Ren-Min Ma include University of California & University of California, Berkeley.

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Plasmon lasers at deep subwavelength scale

TL;DR: Hybrid plasmonic waveguides as discussed by the authors employ a high-gain semiconductor nanostructure functioning as a gain medium that is separated from a metal substrate surface by a nanoscale thickness thick low-index gap.
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Single-mode laser by parity-time symmetry breaking.

TL;DR: Results that take their cue from theoretical ideas of parity-time symmetry and implement them into the design of coupled laser components show that loss and gain can actually work together.
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Room-temperature sub-diffraction-limited plasmon laser by total internal reflection

TL;DR: In this paper, a sub-diffraction-limited plasmon laser with low losses is demonstrated, which enables its room-temperature operation, taking a significant step towards realizing the potential of these lasers.
Journal Article

Room temperature sub-diffraction-limited plasmon laser by total internal reflection

TL;DR: A room-temperature semiconductor sub-diffraction-limited laser is presented by adopting total internal reflection of surface plasmons to mitigate the radiation loss, while using hybrid semiconductor-insulator-metal nanosquares for strong confinement with low metal loss.
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Room temperature plasmon laser by total internal reflection

TL;DR: In this article, a room temperature semiconductor plasmon laser with both strong cavity feedback and optical confinement to 1/20th of the wavelength was reported, where the strong feedback arises from total internal reflection of surface plasmons, while the confinement enhances the spontaneous emission rate by up to 20 times.