Wang Yunjia, Wang Jianwen, Wen Qiao
Key Laboratory of Optoelectronic Devices and Systems of Ministry of Education and Guangdong Province, College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China.
Nanomaterials (Basel). 2021 Mar 12;11(3):720. doi: 10.3390/nano11030720.
Owing to their unique characteristics, two-dimensional (2-D) materials and their complexes have become very attractive in photoelectric applications. Two-dimensional heterojunctions, as novel 2-D complex materials, have drawn much attention in recent years. Herein, we propose a 2-D heterojunction composed of MXene (TiCT) materials and graphene oxide (GO), and apply it to an Nd:YAG solid-state laser as a saturable absorber (SA) for passive Q-switching. Our results suggest that a nano-heterojunction between MXene and GO was achieved based on morphological characterization, and the advantages of a broadband response, higher stability in GO, and strong interaction with light waves in MXene could be combined. In the passively Q-switched laser study, the single-pulse energy was measured to be approximately 0.79 µJ when the pump power was 3.72 W, and the corresponding peak power was approximately 7.25 W. In addition, the generation of a stable ultrashort pulse down to 109 ns was demonstrated, which is the narrowest pulse among Q-switched solid-state lasers using a 2-D heterojunction SA. Our work indicates that the MXene-GO nano-heterojunction could operate as a promising SA for ultrafast systems with ultrahigh pulse energy and ultranarrow pulse duration. We believe that this work opens up a new approach to designing 2-D heterojunctions and provides insight into the formation of new 2-D materials with desirable photonic properties.
由于其独特的特性,二维(2-D)材料及其复合物在光电应用中变得非常有吸引力。二维异质结作为新型的二维复合材料,近年来受到了广泛关注。在此,我们提出了一种由MXene(TiCT)材料和氧化石墨烯(GO)组成的二维异质结,并将其应用于Nd:YAG固体激光器中作为可饱和吸收体(SA)用于被动调Q。我们的结果表明,基于形态表征实现了MXene和GO之间的纳米异质结,并且可以结合宽带响应、GO中更高的稳定性以及MXene中与光波的强相互作用等优点。在被动调Q激光研究中,当泵浦功率为3.72 W时,单脉冲能量测量为约0.79 μJ,相应的峰值功率约为7.25 W。此外,还展示了产生低至109 ns的稳定超短脉冲,这是使用二维异质结SA的调Q固体激光器中最窄的脉冲。我们的工作表明,MXene-GO纳米异质结可以作为一种有前途的可饱和吸收体用于具有超高脉冲能量和超窄脉冲持续时间的超快系统。我们相信这项工作开辟了一种设计二维异质结的新方法,并为形成具有理想光子特性的新型二维材料提供了见解。