Yang Kuo, Dong Qianqian, Liu Hang, Wu Lei, Zong Shenfei, Wang Zhuyuan
Advanced Photonics Center, School of Electronic Science and Engineering, Southeast University, Nanjing, 210096, China.
Adv Sci (Weinh). 2024 Jul;11(26):e2309257. doi: 10.1002/advs.202309257. Epub 2024 May 5.
The urgent demand for addressing dye contaminants in water necessitates the development of microrobots that exhibit remote navigation, rapid removal, and molecular identification capabilities. The progress of microrobot development is currently hindered by the scarcity of multifunctional materials. In this study, a plasmonic MXene hydrogel (PM-Gel) is synthesized by combining bimetallic nanocubes and TiCT MXene through the rapid gelation of degradable alginate. The hydrogel can efficiently adsorb over 60% of dye contaminants within 2 min, ultimately achieving a removal rate of >90%. Meanwhile, the hydrogel exhibits excellent sensitivity in surface enhanced Raman scattering (SERS) detection, with a limit of detection (LOD) as low as 3.76 am. The properties of the plasmonic hydrogel can be further adjusted for various applications. As a proof-of-concept experiment, thermosensitive polymers and superparamagnetic particles are successfully integrated into this hydrogel to construct a versatile, light-responsive microrobot for dye contaminants. With magnetic and optical actuation, the robot can remotely sample, identify, and remove pollutants in maze-like channels. Moreover, light-driven hydrophilic-hydrophobic switch of the microrobots through photothermal effect can further enhance the adsorption capacity and reduced the dye residue by up to 58%. These findings indicate of a broad application potential in complex real-world environments.
解决水中染料污染物的迫切需求使得开发具有远程导航、快速去除和分子识别能力的微型机器人成为必要。目前,多功能材料的稀缺阻碍了微型机器人的发展进程。在本研究中,通过可降解藻酸盐的快速凝胶化,将双金属纳米立方体与TiCT MXene相结合,合成了一种等离子体MXene水凝胶(PM-Gel)。该水凝胶能够在2分钟内有效吸附60%以上的染料污染物,最终实现>90%的去除率。同时,该水凝胶在表面增强拉曼散射(SERS)检测中表现出优异的灵敏度,检测限(LOD)低至3.76 am。等离子体水凝胶的性能可针对各种应用进行进一步调整。作为概念验证实验,热敏聚合物和超顺磁性颗粒成功集成到该水凝胶中,构建了一种用于染料污染物的多功能、光响应微型机器人。通过磁驱动和光驱动,该机器人能够在迷宫状通道中远程采样、识别和去除污染物。此外,微型机器人通过光热效应实现的光驱动亲水-疏水切换可进一步提高吸附能力,并将染料残留量降低多达58%。这些发现表明其在复杂现实环境中具有广阔的应用潜力。