School of Electrical and Computer Engineering, Purdue University, West Lafayette, IN, 47907, USA.
Birck Nanotechnology West Lafayette, Purdue University, West Lafayette, IN, 47907, USA.
Adv Mater. 2018 Mar;30(10). doi: 10.1002/adma.201704405. Epub 2018 Jan 16.
Few-layer black phosphorus (BP) has emerged as one of the most promising candidates for post-silicon electronic materials due to its outstanding electrical and optical properties. However, lack of large-scale BP thin films is still a major roadblock to further applications. The most widely used methods for obtaining BP thin films are mechanical exfoliation and liquid exfoliation. Herein, a method of directly synthesizing continuous BP thin films with the capability of patterning arbitrary shapes by employing ultrafast laser writing with confinement is reported. The physical mechanism of confined laser metaphase transformation is understood by molecular dynamics simulation. Ultrafast laser ablation of BP layer under confinement can induce transient nonequilibrium high-temperature and high-pressure conditions for a few picoseconds. Under optimized laser intensity, this process induces a metaphase transformation to form a crystalline BP thin film on the substrate. Raman spectroscopy, atomic force microscopy, and transmission electron microscopy techniques are utilized to characterize the morphology of the resulting BP thin films. Field-effect transistors are fabricated on the BP films to study their electrical properties. This unique approach offers a general methodology to mass produce large-scale patterned BP films with a one-step manufacturing process that has the potential to be applied to other 2D materials.
少层黑磷 (BP) 因其出色的电学和光学性能而成为继硅之后最有前途的电子材料候选者之一。然而,缺乏大规模的 BP 薄膜仍然是进一步应用的主要障碍。获得 BP 薄膜最广泛使用的方法是机械剥落和液相剥落。本文报道了一种通过采用限制的超快激光写入直接合成具有任意形状图案能力的连续 BP 薄膜的方法。通过分子动力学模拟理解了限制激光相变的物理机制。在限制下,BP 层的超快激光烧蚀可以在几皮秒内诱导瞬态非平衡高温高压条件。在优化的激光强度下,该过程诱导相变,在基底上形成结晶 BP 薄膜。利用拉曼光谱、原子力显微镜和透射电子显微镜技术对所得 BP 薄膜的形貌进行了表征。在 BP 薄膜上制造场效应晶体管以研究其电学性能。这种独特的方法提供了一种通用的方法,可以大规模生产具有一步制造工艺的图案化 BP 薄膜,该工艺有可能应用于其他二维材料。