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用于产生脉冲近红外激光的超扁平朗缪尔-布洛杰特组装氧化石墨烯可饱和吸收体薄膜

Ultraflat Langmuir-Blodgett assembled graphene oxide saturable-absorber films for pulsed near-infrared laser generation.

作者信息

Li Yifan, Wang Xueli, Wang Jiang, Wang Yonggang, Han Junhe, Wang Xi, Chen Ke

机构信息

Center for the Physics of Low-Dimensional Materials, Henan Joint International Research Laboratory of New Energy Materials and Devices, School of Physics and Electronics, Henan University, Kaifeng, People's Republic of China.

School of Artificial Intelligence, Optics and Electronics (iOPEN), Northwestern Polytechnical University, Xi'an, People's Republic of China.

出版信息

Nanotechnology. 2021 Jul 2;32(38). doi: 10.1088/1361-6528/ac074d.

Abstract

Large-scale production of ultraflat broadband saturable-absorber films is highly desired for passive mode-locked solid-state lasers. However, the current vapour deposition and spin coating routes for fabricating saturable absorbers (SAs) are suffering from the limited flexibility in substrate choice and complexity of mass production processes. Here, we demonstrate an ultraflat carboxyl-functionalized graphene oxide (GO-COOH) SA film via Langmuir-Blodgett (LB) assembly for solid state laser mode-locking. Hydrophilic carboxyl groups from GO sheets weaken the aggregation effect thus contribute to the uniform and stable dispersion of GO sheets in water. Such GO suspensions are made into an ultrathin large-area graphene-based SA film by a LB assembly process ensuring high surface uniformity. The room-temperature and highly repeated operation for GO LB films avoids the thermal damage of GO sheets and improves the membrane repeatability. Consequently, the ultrathin GO-COOH SA shows the modulation depth (2.3%) and low saturation intensity (24.7 KW cm) under 1064 nm laser irradiation. By inserting the GO SA into a Nd:GdVOlaser, both passive Q-switched (QS) and passive Q-switched mode-locked (QML) operations are also attained. The slope efficiency of QS laser is up to 35.6% and the maximum single pulse energy is 1.48J. In particular, the QML pulses can be achieved stably and repeatedly with an average output power of 1.33 W and a pulse energy of 13.2 nJ. Our strategy provides a new concept for improving the modulation stability of graphene-based SAs and promoting their industrial application in pulsed solid-state lasers.

摘要

对于被动锁模固态激光器而言,极需大规模生产超平宽带饱和吸收体薄膜。然而,目前用于制造饱和吸收体(SA)的气相沉积和旋涂方法,在衬底选择上灵活性有限,且大规模生产过程复杂。在此,我们展示了一种通过朗缪尔-布洛杰特(LB)组装法制备的用于固态激光锁模的超平羧基功能化氧化石墨烯(GO-COOH)SA薄膜。来自氧化石墨烯片层的亲水性羧基削弱了聚集效应,从而有助于氧化石墨烯片层在水中均匀稳定地分散。通过LB组装工艺将这种氧化石墨烯悬浮液制成超薄大面积的基于石墨烯的SA薄膜,确保了高表面均匀性。氧化石墨烯LB薄膜的室温及高度可重复操作避免了氧化石墨烯片层的热损伤,提高了薄膜的可重复性。因此,超薄的GO-COOH SA在1064 nm激光照射下显示出调制深度(2.3%)和低饱和强度(24.7 KW/cm)。通过将GO SA插入Nd:GdVO激光器中,还实现了被动调Q(QS)和被动调Q锁模(QML)操作。QS激光器的斜率效率高达35.6%,最大单脉冲能量为1.48 J。特别是,QML脉冲可以稳定且重复地实现,平均输出功率为1.33 W,脉冲能量为13.2 nJ。我们的策略为提高基于石墨烯的SA的调制稳定性及其在脉冲固态激光器中的工业应用提供了一个新概念。

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