College of Life Sciences and Institute of Quantitative Biology, Zhejiang University, Hangzhou, Zhejiang 310058, China.
J Phys Chem B. 2024 May 16;128(19):4751-4758. doi: 10.1021/acs.jpcb.3c06786. Epub 2024 May 6.
The surface patterning in natural systems has exhibited appreciable functional advantages for life activities, which serve as inspiration for the design of artificial counterparts to achieve functions such as directional liquid transport at the nanoscale. Here, we propose a patterned two-dimensional (2D) in-plane heterostructure with a triangle-shaped hexagonal boron nitride (hBN) track embedded in graphene nanosheets, which can achieve unidirectional and self-propelled transport of nanodroplets carrying various biomolecules such as DNA, RNA, and peptides. Our extensive MD simulations show that the wettability gradient on the patterned heterostructure can drive the motion of nanodroplet with an instantaneous acceleration, which also permits long-distance transport (>100 nm) at the microsecond time scale. The different behaviors of various types of biomolecules have been further studied systematically within the transporting nanodroplets. These findings suggest that these specially designed, patterned heterostructures have the potential for spontaneous, directional transport of important biomolecules, which might be useful in biosensing, drug delivery, and biomedical nanodevices.
自然界中的表面图案化展示出了对生命活动具有明显功能优势,为设计人工对应物提供了灵感,以实现纳米尺度上的定向液体输运等功能。在这里,我们提出了一种具有三角形六方氮化硼(hBN)轨道嵌入石墨烯纳米片中的二维(2D)平面内异质结构图案,可实现携带各种生物分子(如 DNA、RNA 和肽)的纳米液滴的单向和自推进运输。我们广泛的 MD 模拟表明,图案化异质结构上的润湿性梯度可以驱动纳米液滴的瞬时加速运动,这也允许在微秒时间尺度上进行远距离运输(>100nm)。进一步在输运纳米液滴中系统地研究了各种类型生物分子的不同行为。这些发现表明,这些专门设计的图案化异质结构具有对重要生物分子进行自发、定向运输的潜力,这可能对生物传感、药物输送和生物医学纳米器件有用。