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Photoacoustic Identification of Laser-induced Microbubbles as Light Scattering Centers for Optical Limiting in Liquid Suspension of Graphene Nanosheets

DOI:10.1039/C9NR10516F 期刊:Nanoscale 出版年份:2020 更新时间:2025-09-16 10:30:52
摘要: Liquid suspensions of carbon nanotubes, graphene and transition metal dichalcogenides have exhibited excellent performance in optical limiting. However, the underlying mechanism has remained elusive and is generally ascribed to their superior nonlinear optical properties such as nonlinear absorption or nonlinear scattering. Using graphene as an example, we show that photo-thermal microbubbles are responsible for the optical limiting as strong light scattering centers: graphene sheets absorb incident light and become heated up above the boiling point of water, resulting in vapor and microbubble generation. This conclusion is based on direct observation of bubbles above the laser beam as well as a strong correlation between laser-induced ultrasound and optical limiting. In-situ Raman scattering of graphene further confirms that the temperature of graphene under laser pulses rises above the boiling point of water but still remains too low to vaporize graphene and create graphene plasma bubbles. Photo-thermal bubble scattering is not a nonlinear optical process and requires very low laser intensity. This understanding helps us to design more efficient optical limiting materials and understand the intrinsic nonlinear optical properties of nanomaterials.
作者: Qiuhui Zhang,Yi Qiu,Feng Lin,Chao Niu,Xufeng Zhou,Zhaoping Liu,Md Kamrul Alam,Shenyu Dai,Wei Zhang,Jonathan Hu,Zhiming Wang,Jiming Bao
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Investigating the mechanism of optical limiting in liquid suspensions of graphene, focusing on the role of photo-thermal microbubbles as light scattering centers.

The study concludes that laser-induced microbubbles are responsible for the optical limiting observed in graphene suspensions, acting as strong light scattering centers. This mechanism is not a nonlinear optical process and operates at low laser intensities, offering insights for designing efficient optical limiting materials and understanding nanomaterials' intrinsic properties.

The study primarily focuses on graphene suspensions, and the findings may not directly apply to other nanomaterials without further investigation. The distinction between graphene and bubble scattering centers required sophisticated imaging techniques.

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