High output mode-locked laser empowered by defect regulation in 2D BiOSe saturable absorber.

Nat Commun

School of Physics and Key Laboratory of MEMS of the Ministry of Education, Southeast University, Nanjing, 211189, China.

Published: July 2022

AI Article Synopsis

  • Atomically thin BiOSe is a promising 2D material for optical applications, featuring a strong nonlinear optical response and high carrier mobility.
  • Researchers used BiOSe nanoplates as a saturable absorber in a femtosecond laser, boosting average power from 421 mW to 665 mW and reducing pulse width from 587 fs to 266 fs after defect regulation.
  • The study highlights that modifying defects in BiOSe improves performance metrics like saturation intensity and accelerates photocarrier dynamics, leading to efficient mode-locked laser operation.

Article Abstract

Atomically thin BiOSe has emerged as a novel two-dimensional (2D) material with an ultrabroadband nonlinear optical response, high carrier mobility and excellent air stability, showing great potential for the realization of optical modulators. Here, we demonstrate a femtosecond solid-state laser at 1.0 µm with BiOSe nanoplates as a saturable absorber (SA). Upon further defect regulation in 2D BiOSe, the average power of the mode-locked laser is improved from 421 mW to 665 mW, while the pulse width is decreased from 587 fs to 266 fs. Moderate Ar plasma treatments are employed to precisely regulate the O and Se defect states in BiOSe nanoplates. Nondegenerate pump-probe measurements show that defect engineering effectively accelerates the trapping rate and defect-assisted Auger recombination rate of photocarriers. The saturation intensity is improved from 3.6 ± 0.2 to 12.8 ± 0.6 MW cm after the optimized defect regulation. The enhanced saturable absorption and ultrafast carrier lifetime endow the high-performance mode-locked laser with both large output power and short pulse duration.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9256711PMC
http://dx.doi.org/10.1038/s41467-022-31606-8DOI Listing

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