Ye Longfang, Li Jingyan, Richter Felix Ulrich, Jahani Yasaman, Lu Rui, Lee Bo Ray, Tseng Ming Lun, Altug Hatice
Institute of Electromagnetics and Acoustics, School of Electronic Science and Engineering, Xiamen University, Xiamen 361005, People's Republic of China.
Laboratory of Bionanophotonic Systems, Institute of Bioengineering, École Polytechnique Fédérale de Lausanne (EPFL), Lausanne 1015, Switzerland.
ACS Photonics. 2023 Nov 8;10(12):4377-4384. doi: 10.1021/acsphotonics.3c01186. eCollection 2023 Dec 20.
Chirality () is a fundamental property of objects, in terms of symmetry. It is extremely important to sense and distinguish chiral molecules in the fields of biochemistry, science, and medicine. Vibrational circular dichroism (VCD) spectroscopy, obtained from the differential absorption of left- and right- circularly polarized light (CPL) in the infrared range, is a promising technique for enantiomeric detection and separation. However, VCD signals are typically very weak for most small molecules. Dielectric metasurfaces are an emerging platform to enhance the sensitivity of VCD spectroscopy of chiral molecules via superchiral field manipulation. Here, we demonstrate a dielectric metasurface consisting of achiral germanium (Ge) tetramer nanoresonators that provide a proper and accessible high enhancement (). We realize a maximum enhancement () with respect to the incident CPL ( = ) of more than 750. The volume-averaged enhancement ( = ) is 148 in the 50 nm thick region above the sample surface and 215 in the central region of the structure. Especially, the corresponding values are more than 89 and 183 even when a 50 nm thick chiral lossy molecular layer is coated on the metasurface. The metasurface benefits from geometrically achiral nanostructure design to eliminate intrinsic background chiral-optical signal from the substrate, which is useful in chiral sensing, enantioselectivity, and VCD spectroscopy applications in the mid-infrared range.
手性()是物体基于对称性的一种基本属性。在生物化学、科学和医学领域,感知和区分手性分子极为重要。振动圆二色性(VCD)光谱是通过红外波段左旋和右旋圆偏振光(CPL)的差分吸收获得的,是一种用于对映体检测和分离的有前景的技术。然而,对于大多数小分子而言,VCD信号通常非常微弱。介电超表面是一个新兴平台,可通过超手性场操纵来提高手性分子VCD光谱的灵敏度。在此,我们展示了一种由非手性锗(Ge)四聚体纳米谐振器组成的介电超表面,它能提供适当且可实现的高增强()。我们实现了相对于入射CPL(=)超过750的最大增强()。在样品表面上方50nm厚的区域,体积平均增强(=)为148,在结构的中心区域为215。特别是,即使在超表面上涂覆一层50nm厚的手性有损分子层时,相应的值仍分别大于89和183。该超表面得益于几何非手性纳米结构设计,可消除来自基底的固有背景手性光学信号,这在中红外范围内的手性传感、对映选择性和VCD光谱应用中很有用。