ITMO University , St. Petersburg 197101, Russia.
ACS Nano. 2018 Feb 27;12(2):954-964. doi: 10.1021/acsnano.7b06691. Epub 2018 Jan 23.
Two-dimensional (2D) nanomaterials have been intensively investigated due to their interesting properties and range of potential applications. Although most research has focused on graphene, atomic layered transition metal dichalcogenides (TMDs) and particularly MoS have gathered much deserved attention recently. Here, we report the induction of chirality into 2D chiral nanomaterials by carrying out liquid exfoliation of MoS in the presence of chiral ligands (cysteine and penicillamine) in water. This processing resulted in exfoliated chiral 2D MoS nanosheets showing strong circular dichroism signals, which were far past the onset of the original chiral ligand signals. Using theoretical modeling, we demonstrated that the chiral nature of MoS nanosheets is related to the presence of chiral ligands causing preferential folding of the MoS sheets. There was an excellent match between the theoretically calculated and experimental spectra. We believe that, due to their high aspect ratio planar morphology, chiral 2D nanomaterials could offer great opportunities for the development of chiroptical sensors, materials, and devices for valleytronics and other potential applications. In addition, chirality plays a key role in many chemical and biological systems, with chiral molecules and materials critical for the further development of biopharmaceuticals and fine chemicals, and this research therefore should have a strong impact on relevant areas of science and technology such as nanobiotechnology, nanomedicine, and nanotoxicology.
二维(2D)纳米材料因其有趣的性质和广泛的潜在应用而受到广泛关注。尽管大多数研究都集中在石墨烯上,但原子层状过渡金属二硫属化物(TMDs),特别是 MoS,最近引起了人们的极大关注。在这里,我们报告了通过在手性配体(半胱氨酸和青霉素胺)存在下在水中进行 MoS 的液相剥离,将手性诱导到二维手性纳米材料中。这种处理导致剥离的手性二维 MoS 纳米片表现出强烈的圆二色性信号,远远超过原始手性配体信号的起始。使用理论建模,我们证明了 MoS 纳米片的手性性质与手性配体的存在有关,手性配体导致 MoS 片的优先折叠。理论计算和实验光谱之间有很好的匹配。我们相信,由于其高纵横比的平面形态,手性二维纳米材料为发展用于谷电子学和其他潜在应用的手性光传感器、材料和器件提供了巨大的机会。此外,手性在手性分子和材料在手性在许多化学和生物系统中起着关键作用,在手性分子和材料对于生物制药和精细化学品的进一步发展至关重要,因此这项研究应该对纳米生物技术、纳米医学和纳米毒理学等相关科学和技术领域产生强烈影响。