Xu Cheng, Ren Zhihao, Zhou Hong, Zhou Jingkai, Ho Chong Pei, Wang Nan, Lee Chengkuo
Department of Electrical and Computer Engineering, National University of Singapore, Singapore, 117583, Singapore.
Center for Intelligent Sensors and MEMS (CISM), National University of Singapore, Singapore, 117608, Singapore.
Light Sci Appl. 2023 Jun 25;12(1):154. doi: 10.1038/s41377-023-01186-3.
Circular dichroism (CD) spectroscopy has been widely demonstrated for detecting chiral molecules. However, the determination of chiral mixtures with various concentrations and enantiomeric ratios can be a challenging task. To solve this problem, we report an enhanced vibrational circular dichroism (VCD) sensing platform based on plasmonic chiral metamaterials, which presents a 6-magnitude signal enhancement with a selectivity of chiral molecules. Guided by coupled-mode theory, we leverage both in-plane and out-of-plane symmetry-breaking structures for chiral metamaterial design enabled by a two-step lithography process, which increases the near-field coupling strengths and varies the ratio between absorption and radiation loss, resulting in improved chiral light-matter interaction and enhanced molecular VCD signals. Besides, we demonstrate the thin-film sensing process of BSA and β-lactoglobulin proteins, which contain secondary structures α-helix and β-sheet and achieve a limit of detection down to zeptomole level. Furthermore, we also, for the first time, explore the potential of enhanced VCD spectroscopy by demonstrating a selective sensing process of chiral mixtures, where the mixing ratio can be successfully differentiated with our proposed chiral metamaterials. Our findings improve the sensing signal of molecules and expand the extractable information, paving the way toward label-free, compact, small-volume chiral molecule detection for stereochemical and clinical diagnosis applications.
圆二色性(CD)光谱已被广泛用于检测手性分子。然而,确定具有不同浓度和对映体比例的手性混合物可能是一项具有挑战性的任务。为了解决这个问题,我们报道了一种基于等离子体手性超材料的增强型振动圆二色性(VCD)传感平台,它对手性分子具有6个数量级的信号增强和选择性。在耦合模理论的指导下,我们利用两步光刻工艺实现的面内和面外对称破缺结构来设计手性超材料,这增加了近场耦合强度并改变了吸收与辐射损耗之间的比例,从而改善了手性光与物质的相互作用并增强了分子VCD信号。此外,我们展示了牛血清白蛋白(BSA)和β-乳球蛋白的薄膜传感过程,这些蛋白质含有二级结构α-螺旋和β-折叠,检测限低至zeptomole水平。此外,我们还首次通过展示手性混合物的选择性传感过程来探索增强型VCD光谱的潜力,利用我们提出的手性超材料可以成功区分混合比例。我们的研究结果改善了分子的传感信号并扩展了可提取的信息,为立体化学和临床诊断应用中无标记、紧凑、小体积的手性分子检测铺平了道路。